<?xml version="1.0" encoding="UTF-8"?>
<?xml-stylesheet type="text/xsl" href="https://m2.mtmt.hu/xsl/gui3.xsl" ?>
<myciteResult>
  <serverUrl>https://m2.mtmt.hu/</serverUrl>
  <labelLang>hun</labelLang>
  <responseDate>2026-09-21 16:49</responseDate>
  <content>
    <publication>
      <otype>JournalArticle</otype>
      <mtid>34773870</mtid>
      <status>VALIDATED</status>
      <published>true</published>
      <comment>Funding Agency and Grant Number: American Heart Association
            Funding text: No Statement Available</comment>
      <unhandledTickets>0</unhandledTickets>
      <deleted>false</deleted>
      <lastRefresh>2026-08-03T11:26:18.133+0000</lastRefresh>
      <lastModified>2024-12-06T18:08:15.305+0000</lastModified>
      <created>2024-04-06T09:28:10.620+0000</created>
      <creator>
        <snippet>true</snippet>
        <mtid>10080371</mtid>
        <familyName>Major</familyName>
        <givenName>Dávid</givenName>
        <link>/api/author/10080371</link>
        <otype>Author</otype>
        <label>Major Dávid (Megelőző orvostan, társadalomegészségtan)</label>
        <published>true</published>
      </creator>
      <lastDuplumSearch>2026-01-22T15:32:28.536+0000</lastDuplumSearch>
      <validated>2024-12-06T18:08:15.693+0000</validated>
      <validator>
        <snippet>true</snippet>
        <mtid>10039043</mtid>
        <familyName>Milánkovics</familyName>
        <givenName>Róbert</givenName>
        <link>/api/admin/10039043</link>
        <otype>Admin</otype>
        <label>Milánkovics Róbert (PTE ÁOK admin 4)</label>
        <published>true</published>
        <oldId>10039043</oldId>
      </validator>
      <tempLockers>
        <otype>Admin</otype>
        <mtid>10025544</mtid>
        <link>/api/admin/10025544</link>
        <label>Lévayné Deseő Katalin (MTMT Központi admin)</label>
        <familyName>Lévayné Deseő</familyName>
        <givenName>Katalin</givenName>
        <published>true</published>
        <oldId>10025544</oldId>
        <snippet>true</snippet>
      </tempLockers>
      <tempLocked>2025-06-04T23:43:15.174+0000</tempLocked>
      <core>true</core>
      <publicationPending>false</publicationPending>
      <type>
        <snippet>true</snippet>
        <mtid>24</mtid>
        <code>24</code>
        <link>/api/publicationtype/24</link>
        <otype>PublicationType</otype>
        <label>Folyóiratcikk</label>
        <listPosition>1</listPosition>
        <published>true</published>
        <oldId>24</oldId>
        <otypeName>JournalArticle</otypeName>
      </type>
      <subType>
        <snippet>true</snippet>
        <mtid>10000059</mtid>
        <nameEng>Article</nameEng>
        <docType>
          <snippet>true</snippet>
          <mtid>24</mtid>
          <code>24</code>
          <link>/api/publicationtype/24</link>
          <otype>PublicationType</otype>
          <label>Folyóiratcikk</label>
          <listPosition>1</listPosition>
          <published>true</published>
          <oldId>24</oldId>
          <otypeName>JournalArticle</otypeName>
        </docType>
        <link>/api/subtype/10000059</link>
        <name>Szakcikk</name>
        <otype>SubType</otype>
        <label>Szakcikk (Folyóiratcikk)</label>
        <listPosition>101</listPosition>
        <published>true</published>
        <oldId>10000059</oldId>
      </subType>
      <category>
        <snippet>true</snippet>
        <mtid>1</mtid>
        <link>/api/category/1</link>
        <otype>Category</otype>
        <label>Tudományos</label>
        <published>true</published>
        <oldId>1</oldId>
      </category>
      <firstAuthor>Balasubramanian, Priya</firstAuthor>
      <title>Accelerated Aging Induced by an Unhealthy High-Fat Diet: Initial Evidence for the Role of Nrf2 Deficiency and Impaired Stress Resilience in Cellular Senescence</title>
      <journal>
        <snippet>true</snippet>
        <sciIndexed>true</sciIndexed>
        <link>/api/journal/10016563</link>
        <reviewType>REVIEWED</reviewType>
        <label>NUTRIENTS 2072-6643</label>
        <published>true</published>
        <hungarian>false</hungarian>
        <oldId>10016563</oldId>
        <noIF>false</noIF>
        <mtid>10016563</mtid>
        <scopusIndexed>true</scopusIndexed>
        <eIssn>2072-6643</eIssn>
        <otype>Journal</otype>
        <lang>FOREIGN</lang>
      </journal>
      <volume>16</volume>
      <issue>7</issue>
      <internalId>952</internalId>
      <firstPageOrInternalIdForSort>952</firstPageOrInternalIdForSort>
      <pageLength>18</pageLength>
      <publishedYear>2024</publishedYear>
      <abstractText>High-fat diets (HFDs) have pervaded modern dietary habits, characterized by their excessive saturated fat content and low nutritional value. Epidemiological studies have compellingly linked HFD consumption to obesity and the development of type 2 diabetes mellitus. Moreover, the synergistic interplay of HFD, obesity, and diabetes expedites the aging process and prematurely fosters age-related diseases. However, the underlying mechanisms driving these associations remain enigmatic. One of the most conspicuous hallmarks of aging is the accumulation of highly inflammatory senescent cells, with mounting evidence implicating increased cellular senescence in the pathogenesis of age-related diseases. Our hypothesis posits that HFD consumption amplifies senescence burden across multiple organs. To scrutinize this hypothesis, we subjected mice to a 6-month HFD regimen, assessing senescence biomarker expression in the liver, white adipose tissue, and the brain. Aging is intrinsically linked to impaired cellular stress resilience, driven by dysfunction in Nrf2-mediated cytoprotective pathways that safeguard cells against oxidative stress-induced senescence. To ascertain whether Nrf2-mediated pathways shield against senescence induction in response to HFD consumption, we explored senescence burden in a novel model of aging: Nrf2-deficient (Nrf2+/−) mice, emulating the aging phenotype. Our initial findings unveiled significant Nrf2 dysfunction in Nrf2+/− mice, mirroring aging-related alterations. HFD led to substantial obesity, hyperglycemia, and impaired insulin sensitivity in both Nrf2+/− and Nrf2+/+ mice. In control mice, HFD primarily heightened senescence burden in white adipose tissue, evidenced by increased Cdkn2a senescence biomarker expression. In Nrf2+/− mice, HFD elicited a significant surge in senescence burden across the liver, white adipose tissue, and the brain. We postulate that HFD-induced augmentation of senescence burden may be a pivotal contributor to accelerated organismal aging and the premature onset of age-related diseases.</abstractText>
      <digital>true</digital>
      <printed/>
      <sourceYear>2024</sourceYear>
      <foreignEdition>true</foreignEdition>
      <foreignLanguage>true</foreignLanguage>
      <fullPublication>true</fullPublication>
      <conferencePublication>false</conferencePublication>
      <nationalOrigin>true</nationalOrigin>
      <missingAuthor>false</missingAuthor>
      <oaType>GOLD</oaType>
      <oaCheckDate>2026-08-03</oaCheckDate>
      <oaFree>false</oaFree>
      <oaLink>http://www.mdpi.com/journal/nutrients/</oaLink>
      <citationCount>36</citationCount>
      <citationCountUnpublished>0</citationCountUnpublished>
      <citationCountWoOther>36</citationCountWoOther>
      <independentCitCountWoOther>32</independentCitCountWoOther>
      <nationalOriginCitationCount>5</nationalOriginCitationCount>
      <foreignEditionCitationCount>36</foreignEditionCitationCount>
      <doiCitationCount>36</doiCitationCount>
      <wosCitationCount>33</wosCitationCount>
      <scopusCitationCount>34</scopusCitationCount>
      <wosScopusCitationCount>36</wosScopusCitationCount>
      <wosScopusCitationCountWoOther>36</wosScopusCitationCountWoOther>
      <wosScopusIndependentCitationCount>32</wosScopusIndependentCitationCount>
      <wosScopusIndependentCitationCountWoOther>32</wosScopusIndependentCitationCountWoOther>
      <independentCitationCount>32</independentCitationCount>
      <selfCitationCount>4</selfCitationCount>
      <unhandledCitationCount>0</unhandledCitationCount>
      <citingPubCount>36</citingPubCount>
      <independentCitingPubCount>32</independentCitingPubCount>
      <citingPubCountWoOther>36</citingPubCountWoOther>
      <independentCitingPubCountWoOther>32</independentCitingPubCountWoOther>
      <unhandledCitingPubCount>0</unhandledCitingPubCount>
      <citedPubCount>23</citedPubCount>
      <citedCount>23</citedCount>
      <pubStats>
        <types>
          <type>Folyóiratcikk</type>
          <typeEng>Journal Article</typeEng>
          <code>24</code>
          <count>35</count>
        </types>
        <types>
          <type>Könyvrészlet</type>
          <typeEng>Chapter in Book</typeEng>
          <code>25</code>
          <count>1</count>
        </types>
        <types>
          <type>Könyv</type>
          <typeEng>Book</typeEng>
          <code>23</code>
          <count>0</count>
        </types>
        <types>
          <type>Egyéb konferenciaközlemény</type>
          <typeEng>Conference paper</typeEng>
          <code>31</code>
          <count>0</count>
        </types>
        <types>
          <type>Egyéb konferenciakötet</type>
          <typeEng>Conference proceedings</typeEng>
          <code>32</code>
          <count>0</count>
        </types>
        <types>
          <type>Oltalmi formák</type>
          <typeEng>Protection forms</typeEng>
          <code>26</code>
          <count>0</count>
        </types>
        <types>
          <type>Disszertáció</type>
          <typeEng>Thesis</typeEng>
          <code>28</code>
          <count>0</count>
        </types>
        <types>
          <type>Egyéb</type>
          <typeEng>Miscellaneous</typeEng>
          <code>29</code>
          <count>0</count>
        </types>
        <types>
          <type>Alkotás</type>
          <typeEng>Achievement</typeEng>
          <code>22</code>
          <count>0</count>
        </types>
        <types>
          <type>Kutatási adat</type>
          <typeEng>Research data</typeEng>
          <code>33</code>
          <count>0</count>
        </types>
        <citationTypes>
          <type>Folyóiratcikk</type>
          <typeEng>Journal Article</typeEng>
          <code>24</code>
          <countUnknown>0</countUnknown>
          <countIndependent>0</countIndependent>
          <countSelfCitation>0</countSelfCitation>
        </citationTypes>
        <citationTypes>
          <type>Könyvrészlet</type>
          <typeEng>Chapter in Book</typeEng>
          <code>25</code>
          <countUnknown>0</countUnknown>
          <countIndependent>0</countIndependent>
          <countSelfCitation>0</countSelfCitation>
        </citationTypes>
        <citationTypes>
          <type>Könyv</type>
          <typeEng>Book</typeEng>
          <code>23</code>
          <countUnknown>0</countUnknown>
          <countIndependent>0</countIndependent>
          <countSelfCitation>0</countSelfCitation>
        </citationTypes>
        <citationTypes>
          <type>Egyéb konferenciaközlemény</type>
          <typeEng>Conference paper</typeEng>
          <code>31</code>
          <countUnknown>0</countUnknown>
          <countIndependent>0</countIndependent>
          <countSelfCitation>0</countSelfCitation>
        </citationTypes>
        <citationTypes>
          <type>Egyéb konferenciakötet</type>
          <typeEng>Conference proceedings</typeEng>
          <code>32</code>
          <countUnknown>0</countUnknown>
          <countIndependent>0</countIndependent>
          <countSelfCitation>0</countSelfCitation>
        </citationTypes>
        <citationTypes>
          <type>Oltalmi formák</type>
          <typeEng>Protection forms</typeEng>
          <code>26</code>
          <countUnknown>0</countUnknown>
          <countIndependent>0</countIndependent>
          <countSelfCitation>0</countSelfCitation>
        </citationTypes>
        <citationTypes>
          <type>Disszertáció</type>
          <typeEng>Thesis</typeEng>
          <code>28</code>
          <countUnknown>0</countUnknown>
          <countIndependent>0</countIndependent>
          <countSelfCitation>0</countSelfCitation>
        </citationTypes>
        <citationTypes>
          <type>Egyéb</type>
          <typeEng>Miscellaneous</typeEng>
          <code>29</code>
          <countUnknown>0</countUnknown>
          <countIndependent>0</countIndependent>
          <countSelfCitation>0</countSelfCitation>
        </citationTypes>
        <citationTypes>
          <type>Alkotás</type>
          <typeEng>Achievement</typeEng>
          <code>22</code>
          <countUnknown>0</countUnknown>
          <countIndependent>0</countIndependent>
          <countSelfCitation>0</countSelfCitation>
        </citationTypes>
        <citationTypes>
          <type>Kutatási adat</type>
          <typeEng>Research data</typeEng>
          <code>33</code>
          <countUnknown>0</countUnknown>
          <countIndependent>0</countIndependent>
          <countSelfCitation>0</countSelfCitation>
        </citationTypes>
        <years>
          <year>2024</year>
          <publicationCount>0</publicationCount>
          <citationCount>5</citationCount>
          <independentCitationCount>5</independentCitationCount>
          <citingPubCount>5</citingPubCount>
          <independentCitingPubCount>5</independentCitingPubCount>
          <oaStats/>
          <oaStats2/>
        </years>
        <years>
          <year>2025</year>
          <publicationCount>0</publicationCount>
          <citationCount>21</citationCount>
          <independentCitationCount>18</independentCitationCount>
          <citingPubCount>21</citingPubCount>
          <independentCitingPubCount>18</independentCitingPubCount>
          <oaStats/>
          <oaStats2/>
        </years>
        <years>
          <year>2026</year>
          <publicationCount>0</publicationCount>
          <citationCount>10</citationCount>
          <independentCitationCount>9</independentCitationCount>
          <citingPubCount>10</citingPubCount>
          <independentCitingPubCount>9</independentCitingPubCount>
          <oaStats/>
          <oaStats2/>
        </years>
      </pubStats>
      <ratingsForSort>D1</ratingsForSort>
      <hasCitationDuplums>false</hasCitationDuplums>
      <importDuplum>false</importDuplum>
      <importOverwritten>false</importOverwritten>
      <importSkipped>false</importSkipped>
      <userChangeableUntil>2024-04-23T11:45:40.573+0000</userChangeableUntil>
      <directInstitutesForSort>ELKH-SE Cerebrovaszkuláris és Neurokognitív Bet... (SE / AOK / I / TMI); Gyermekgyógyászati Klinika (SE / AOK / K)</directInstitutesForSort>
      <ownerAuthorCount>5</ownerAuthorCount>
      <ownerInstituteCount>41</ownerInstituteCount>
      <directInstituteCount>2</directInstituteCount>
      <authorCount>8</authorCount>
      <contributorCount>0</contributorCount>
      <hasQualityFactor>true</hasQualityFactor>
      <tempLockerIds>10025544</tempLockerIds>
      <languages>
        <language>
          <otype>Language</otype>
          <mtid>10002</mtid>
          <link>/api/language/10002</link>
          <label>Angol</label>
          <name>Angol</name>
          <nameEng>English</nameEng>
          <published>true</published>
          <oldId>2</oldId>
          <snippet>true</snippet>
        </language>
      </languages>
      <authorships>
        <authorship>
          <otype>PersonAuthorship</otype>
          <mtid>116045315</mtid>
          <link>/api/authorship/116045315</link>
          <label>Balasubramanian, Priya</label>
          <listPosition>1</listPosition>
          <share>0.125</share>
          <first>true</first>
          <last>false</last>
          <corresponding>false</corresponding>
          <familyName>Balasubramanian</familyName>
          <givenName>Priya</givenName>
          <authorTyped>true</authorTyped>
          <editorTyped>false</editorTyped>
          <otherTyped>false</otherTyped>
          <type>
            <otype>AuthorshipType</otype>
            <mtid>1</mtid>
            <link>/api/authorshiptype/1</link>
            <label>Szerző</label>
            <code>0</code>
            <published>true</published>
            <oldId>0</oldId>
            <snippet>true</snippet>
          </type>
          <published>false</published>
          <snippet>true</snippet>
        </authorship>
        <authorship>
          <otype>PersonAuthorship</otype>
          <mtid>116045316</mtid>
          <link>/api/authorship/116045316</link>
          <label>Kiss, Tamas [Kiss, Tamás (bioinformatika), szerző] ELKH-SE Cerebrovaszkuláris és Neurokognitív Bet... (SE / AOK / I / TMI); Gyermekgyógyászati Klinika (SE / AOK / K)</label>
          <listPosition>2</listPosition>
          <share>0.125</share>
          <first>false</first>
          <last>false</last>
          <corresponding>false</corresponding>
          <author>
            <otype>Author</otype>
            <mtid>10071509</mtid>
            <link>/api/author/10071509</link>
            <label>Kiss Tamás (bioinformatika)</label>
            <familyName>Kiss</familyName>
            <givenName>Tamás</givenName>
            <published>true</published>
            <snippet>true</snippet>
          </author>
          <familyName>Kiss</familyName>
          <givenName>Tamas</givenName>
          <authorTyped>true</authorTyped>
          <editorTyped>false</editorTyped>
          <otherTyped>false</otherTyped>
          <type>
            <otype>AuthorshipType</otype>
            <mtid>1</mtid>
            <link>/api/authorshiptype/1</link>
            <label>Szerző</label>
            <code>0</code>
            <published>true</published>
            <oldId>0</oldId>
            <snippet>true</snippet>
          </type>
          <published>false</published>
          <snippet>true</snippet>
        </authorship>
        <authorship>
          <otype>PersonAuthorship</otype>
          <mtid>116045317</mtid>
          <link>/api/authorship/116045317</link>
          <label>Gulej, Rafal</label>
          <listPosition>3</listPosition>
          <share>0.125</share>
          <first>false</first>
          <last>false</last>
          <corresponding>false</corresponding>
          <familyName>Gulej</familyName>
          <givenName>Rafal</givenName>
          <authorTyped>true</authorTyped>
          <editorTyped>false</editorTyped>
          <otherTyped>false</otherTyped>
          <type>
            <otype>AuthorshipType</otype>
            <mtid>1</mtid>
            <link>/api/authorshiptype/1</link>
            <label>Szerző</label>
            <code>0</code>
            <published>true</published>
            <oldId>0</oldId>
            <snippet>true</snippet>
          </type>
          <published>false</published>
          <snippet>true</snippet>
        </authorship>
        <authorship>
          <otype>PersonAuthorship</otype>
          <mtid>116045318</mtid>
          <link>/api/authorship/116045318</link>
          <label>Nyul Toth, Adam [Nyúl-Tóth, Ádám (biofizika), szerző]</label>
          <listPosition>4</listPosition>
          <share>0.125</share>
          <first>false</first>
          <last>false</last>
          <corresponding>false</corresponding>
          <author>
            <otype>Author</otype>
            <mtid>10045003</mtid>
            <link>/api/author/10045003</link>
            <label>Nyúl-Tóth Ádám (biofizika)</label>
            <familyName>Nyúl-Tóth</familyName>
            <givenName>Ádám</givenName>
            <published>true</published>
            <oldId>10045003</oldId>
            <snippet>true</snippet>
          </author>
          <familyName>Nyul Toth</familyName>
          <givenName>Adam</givenName>
          <authorTyped>true</authorTyped>
          <editorTyped>false</editorTyped>
          <otherTyped>false</otherTyped>
          <type>
            <otype>AuthorshipType</otype>
            <mtid>1</mtid>
            <link>/api/authorshiptype/1</link>
            <label>Szerző</label>
            <code>0</code>
            <published>true</published>
            <oldId>0</oldId>
            <snippet>true</snippet>
          </type>
          <published>false</published>
          <snippet>true</snippet>
        </authorship>
        <authorship>
          <otype>PersonAuthorship</otype>
          <mtid>116045319</mtid>
          <link>/api/authorship/116045319</link>
          <label>Tarantini, Stefano [Tarantini, Stefano (népegészségtan, g...), szerző]</label>
          <listPosition>5</listPosition>
          <share>0.125</share>
          <first>false</first>
          <last>false</last>
          <corresponding>false</corresponding>
          <author>
            <otype>Author</otype>
            <mtid>10074557</mtid>
            <link>/api/author/10074557</link>
            <label>Tarantini Stefano (népegészségtan, gerontológia, molekuláris biológia, kórélettan)</label>
            <familyName>Tarantini</familyName>
            <givenName>Stefano</givenName>
            <published>true</published>
            <snippet>true</snippet>
          </author>
          <familyName>Tarantini</familyName>
          <givenName>Stefano</givenName>
          <authorTyped>true</authorTyped>
          <editorTyped>false</editorTyped>
          <otherTyped>false</otherTyped>
          <type>
            <otype>AuthorshipType</otype>
            <mtid>1</mtid>
            <link>/api/authorshiptype/1</link>
            <label>Szerző</label>
            <code>0</code>
            <published>true</published>
            <oldId>0</oldId>
            <snippet>true</snippet>
          </type>
          <published>false</published>
          <snippet>true</snippet>
        </authorship>
        <authorship>
          <otype>PersonAuthorship</otype>
          <mtid>116045320</mtid>
          <link>/api/authorship/116045320</link>
          <label>Yabluchanskiy, Andriy</label>
          <listPosition>6</listPosition>
          <share>0.125</share>
          <first>false</first>
          <last>false</last>
          <corresponding>false</corresponding>
          <familyName>Yabluchanskiy</familyName>
          <givenName>Andriy</givenName>
          <authorTyped>true</authorTyped>
          <editorTyped>false</editorTyped>
          <otherTyped>false</otherTyped>
          <type>
            <otype>AuthorshipType</otype>
            <mtid>1</mtid>
            <link>/api/authorshiptype/1</link>
            <label>Szerző</label>
            <code>0</code>
            <published>true</published>
            <oldId>0</oldId>
            <snippet>true</snippet>
          </type>
          <published>false</published>
          <snippet>true</snippet>
        </authorship>
        <authorship>
          <otype>PersonAuthorship</otype>
          <mtid>116045321</mtid>
          <link>/api/authorship/116045321</link>
          <label>Ungvari, Zoltan ✉ [Ungvári, Zoltán István (Orvostudomány, me...), szerző] ELKH-SE Cerebrovaszkuláris és Neurokognitív Bet... (SE / AOK / I / TMI)</label>
          <listPosition>7</listPosition>
          <share>0.125</share>
          <first>false</first>
          <last>false</last>
          <corresponding>true</corresponding>
          <author>
            <otype>Author</otype>
            <mtid>10043602</mtid>
            <link>/api/author/10043602</link>
            <label>Ungvári Zoltán István (Orvostudomány, megelőző orvostan, népegészségtan, kórélettan, gerontológia)</label>
            <familyName>Ungvári</familyName>
            <givenName>Zoltán István</givenName>
            <published>true</published>
            <oldId>10043602</oldId>
            <snippet>true</snippet>
          </author>
          <familyName>Ungvari</familyName>
          <givenName>Zoltan</givenName>
          <authorTyped>true</authorTyped>
          <editorTyped>false</editorTyped>
          <otherTyped>false</otherTyped>
          <type>
            <otype>AuthorshipType</otype>
            <mtid>1</mtid>
            <link>/api/authorshiptype/1</link>
            <label>Szerző</label>
            <code>0</code>
            <published>true</published>
            <oldId>0</oldId>
            <snippet>true</snippet>
          </type>
          <published>false</published>
          <snippet>true</snippet>
        </authorship>
        <authorship>
          <otype>PersonAuthorship</otype>
          <mtid>116045322</mtid>
          <link>/api/authorship/116045322</link>
          <label>Csiszar, Anna [Csiszar, Anna (Orvostudomany), szerző] ELKH-SE Cerebrovaszkuláris és Neurokognitív Bet... (SE / AOK / I / TMI)</label>
          <listPosition>8</listPosition>
          <share>0.125</share>
          <first>false</first>
          <last>true</last>
          <corresponding>false</corresponding>
          <author>
            <otype>Author</otype>
            <mtid>10071157</mtid>
            <link>/api/author/10071157</link>
            <label>Csiszar Anna (Orvostudomany)</label>
            <familyName>Csiszar</familyName>
            <givenName>Anna</givenName>
            <published>true</published>
            <snippet>true</snippet>
          </author>
          <familyName>Csiszar</familyName>
          <givenName>Anna</givenName>
          <authorTyped>true</authorTyped>
          <editorTyped>false</editorTyped>
          <otherTyped>false</otherTyped>
          <type>
            <otype>AuthorshipType</otype>
            <mtid>1</mtid>
            <link>/api/authorshiptype/1</link>
            <label>Szerző</label>
            <code>0</code>
            <published>true</published>
            <oldId>0</oldId>
            <snippet>true</snippet>
          </type>
          <published>false</published>
          <snippet>true</snippet>
        </authorship>
      </authorships>
      <identifiers>
        <identifier>
          <otype>PublicationIdentifier</otype>
          <mtid>25963140</mtid>
          <link>/api/publicationidentifier/25963140</link>
          <label>DOI: 10.3390/nu16070952</label>
          <source>
            <otype>PlainSource</otype>
            <mtid>6</mtid>
            <link>/api/publicationsource/6</link>
            <label>DOI</label>
            <type>
              <otype>PublicationSourceType</otype>
              <mtid>10001</mtid>
              <link>/api/publicationsourcetype/10001</link>
              <label>DOI</label>
              <mayHaveOa>true</mayHaveOa>
              <published>true</published>
              <snippet>true</snippet>
            </type>
            <name>DOI</name>
            <nameEng>DOI</nameEng>
            <linkPattern>https://doi.org/@@@</linkPattern>
            <publiclyVisible>true</publiclyVisible>
            <published>true</published>
            <oldId>6</oldId>
            <snippet>true</snippet>
          </source>
          <validState>IDENTICAL</validState>
          <idValue>10.3390/nu16070952</idValue>
          <realUrl>https://doi.org/10.3390/nu16070952</realUrl>
          <published>false</published>
          <snippet>true</snippet>
        </identifier>
        <identifier>
          <otype>PublicationIdentifier</otype>
          <mtid>26161888</mtid>
          <link>/api/publicationidentifier/26161888</link>
          <label>WoS: 001201035600001</label>
          <source>
            <otype>PlainSource</otype>
            <mtid>1</mtid>
            <link>/api/publicationsource/1</link>
            <label>WoS</label>
            <type>
              <otype>PublicationSourceType</otype>
              <mtid>10003</mtid>
              <link>/api/publicationsourcetype/10003</link>
              <label>Indexelő adatbázis</label>
              <mayHaveOa>false</mayHaveOa>
              <published>true</published>
              <snippet>true</snippet>
            </type>
            <name>WoS</name>
            <nameEng>WoS</nameEng>
            <linkPattern>https://www.webofscience.com/wos/woscc/full-record/@@@</linkPattern>
            <publiclyVisible>true</publiclyVisible>
            <published>true</published>
            <oldId>1</oldId>
            <snippet>true</snippet>
          </source>
          <validState>IDENTICAL</validState>
          <idValue>001201035600001</idValue>
          <realUrl>https://www.webofscience.com/wos/woscc/full-record/001201035600001</realUrl>
          <published>true</published>
          <snippet>true</snippet>
        </identifier>
        <identifier>
          <otype>PublicationIdentifier</otype>
          <mtid>26081747</mtid>
          <link>/api/publicationidentifier/26081747</link>
          <label>Scopus: 85190491451</label>
          <source>
            <otype>PlainSource</otype>
            <mtid>3</mtid>
            <link>/api/publicationsource/3</link>
            <label>Scopus</label>
            <type>
              <otype>PublicationSourceType</otype>
              <mtid>10003</mtid>
              <link>/api/publicationsourcetype/10003</link>
              <label>Indexelő adatbázis</label>
              <mayHaveOa>false</mayHaveOa>
              <published>true</published>
              <snippet>true</snippet>
            </type>
            <name>Scopus</name>
            <nameEng>Scopus</nameEng>
            <linkPattern>http://www.scopus.com/record/display.url?origin=inward&amp;eid=2-s2.0-@@@</linkPattern>
            <publiclyVisible>true</publiclyVisible>
            <published>true</published>
            <oldId>3</oldId>
            <snippet>true</snippet>
          </source>
          <validState>IDENTICAL</validState>
          <idValue>85190491451</idValue>
          <realUrl>http://www.scopus.com/record/display.url?origin=inward&amp;eid=2-s2.0-85190491451</realUrl>
          <published>true</published>
          <snippet>true</snippet>
        </identifier>
        <identifier>
          <otype>PublicationIdentifier</otype>
          <mtid>26081759</mtid>
          <link>/api/publicationidentifier/26081759</link>
          <label>PubMed: 38612986</label>
          <source>
            <otype>PlainSource</otype>
            <mtid>17</mtid>
            <link>/api/publicationsource/17</link>
            <label>PubMed</label>
            <type>
              <otype>PublicationSourceType</otype>
              <mtid>10003</mtid>
              <link>/api/publicationsourcetype/10003</link>
              <label>Indexelő adatbázis</label>
              <mayHaveOa>false</mayHaveOa>
              <published>true</published>
              <snippet>true</snippet>
            </type>
            <name>PubMed</name>
            <nameEng>PubMed</nameEng>
            <linkPattern>http://www.ncbi.nlm.nih.gov/entrez/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;list_uids=@@@&amp;dopt=Abstract</linkPattern>
            <publiclyVisible>true</publiclyVisible>
            <published>true</published>
            <oldId>17</oldId>
            <snippet>true</snippet>
          </source>
          <validState>IDENTICAL</validState>
          <idValue>38612986</idValue>
          <realUrl>http://www.ncbi.nlm.nih.gov/entrez/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;list_uids=38612986&amp;dopt=Abstract</realUrl>
          <published>true</published>
          <snippet>true</snippet>
        </identifier>
      </identifiers>
      <ratings>
        <rating>
          <otype>SjrRating</otype>
          <mtid>11464918</mtid>
          <link>/api/sjrrating/11464918</link>
          <label>sjr:D1 (2024) Scopus - Food Science NUTRIENTS 2072-6643</label>
          <listPos>23</listPos>
          <rankValue>0.1</rankValue>
          <type>journal</type>
          <ratingType>
            <otype>RatingType</otype>
            <mtid>10002</mtid>
            <link>/api/ratingtype/10002</link>
            <label>sjr</label>
            <code>sjr</code>
            <published>true</published>
            <snippet>true</snippet>
          </ratingType>
          <subject>
            <otype>ClassificationExternal</otype>
            <mtid>1106</mtid>
            <link>/api/classificationexternal/1106</link>
            <label>Scopus - Food Science</label>
            <published>true</published>
            <oldId>1106</oldId>
            <snippet>true</snippet>
          </subject>
          <ranking>D1</ranking>
          <calculation>DIRECT</calculation>
          <published>true</published>
          <snippet>true</snippet>
        </rating>
      </ratings>
      <references>
        <reference>
          <otype>Reference</otype>
          <mtid>51679167</mtid>
          <link>/api/reference/51679167</link>
          <label>1. Valsdottir 2022: Cognition and brain health among older adults in Iceland: The AGES-Reykjavik study., Geroscience, 44, p. 2785, DOI: 10.1007/s11357-022-00642-z</label>
          <listPosition>1</listPosition>
          <doi>10.1007/s11357-022-00642-z</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679168</mtid>
          <link>/api/reference/51679168</link>
          <label>2. Schram 2022: Extracerebral microvascular dysfunction is related to brain MRI markers of cerebral small vessel disease: The Maastricht Study., Geroscience, 44, p. 147, DOI: 10.1007/s11357-021-00493-0</label>
          <listPosition>2</listPosition>
          <doi>10.1007/s11357-021-00493-0</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679169</mtid>
          <link>/api/reference/51679169</link>
          <label>3. Doan 2022: Trends in Cardiovascular Disease by Asian American, Native Hawaiian, and Pacific Islander Ethnicity, Medicare Health Outcomes Survey 2011–2015., J. Gerontol. A Biol. Sci. Med. Sci., 77, p. 299, DOI: 10.1093/gerona/glab262</label>
          <listPosition>3</listPosition>
          <doi>10.1093/gerona/glab262</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679170</mtid>
          <link>/api/reference/51679170</link>
          <label>4. Botoseneanu 2022: Multimorbidity Accumulation Among Middle-Aged Americans: Differences by Race/Ethnicity and Body Mass Index., J. Gerontol. A Biol. Sci. Med. Sci., 77, p. e89, DOI: 10.1093/gerona/glab116</label>
          <listPosition>4</listPosition>
          <doi>10.1093/gerona/glab116</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679171</mtid>
          <link>/api/reference/51679171</link>
          <label>5. Clayton 2022: Lifelong physical activity attenuates age- and Western-style diet-related declines in physical function and adverse changes in skeletal muscle mass and inflammation., Exp. Gerontol., 157, p. 111632, DOI: 10.1016/j.exger.2021.111632</label>
          <listPosition>5</listPosition>
          <doi>10.1016/j.exger.2021.111632</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679172</mtid>
          <link>/api/reference/51679172</link>
          <label>6. Yu 2022: Intrinsic capacity and 10-year mortality: Findings from a cohort of older people., Exp. Gerontol., 167, p. 111926, DOI: 10.1016/j.exger.2022.111926</label>
          <listPosition>6</listPosition>
          <doi>10.1016/j.exger.2022.111926</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679173</mtid>
          <link>/api/reference/51679173</link>
          <label>7. Chang 2023: Optimal body composition indices cutoff values based on all-cause mortality in the elderly., Exp. Gerontol., 171, p. 112026, DOI: 10.1016/j.exger.2022.112026</label>
          <listPosition>7</listPosition>
          <doi>10.1016/j.exger.2022.112026</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679174</mtid>
          <link>/api/reference/51679174</link>
          <label>8. Feter 2021: Physical activity in later life and risk of dementia: Findings from a population-based cohort study., Exp. Gerontol., 143, p. 111145, DOI: 10.1016/j.exger.2020.111145</label>
          <listPosition>8</listPosition>
          <doi>10.1016/j.exger.2020.111145</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679175</mtid>
          <link>/api/reference/51679175</link>
          <label>9. Carlos 2023: Predictors of total mortality and their differential association on premature or late mortality in the SUN cohort., Exp. Gerontol., 172, p. 112048, DOI: 10.1016/j.exger.2022.112048</label>
          <listPosition>9</listPosition>
          <doi>10.1016/j.exger.2022.112048</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679176</mtid>
          <link>/api/reference/51679176</link>
          <label>10. Dobreva 2022: Which components of the Mediterranean diet are associated with dementia? A UK Biobank cohort study., Geroscience, 44, p. 2541, DOI: 10.1007/s11357-022-00615-2</label>
          <listPosition>10</listPosition>
          <doi>10.1007/s11357-022-00615-2</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679177</mtid>
          <link>/api/reference/51679177</link>
          <label>11. Valencia 2021: Are fat and sugar just as detrimental in old age?., Geroscience, 43, p. 1615, DOI: 10.1007/s11357-021-00390-6</label>
          <listPosition>11</listPosition>
          <doi>10.1007/s11357-021-00390-6</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679178</mtid>
          <link>/api/reference/51679178</link>
          <label>12. Ortola 2023: Plant-based diets and risk of frailty in community-dwelling older adults: The Seniors-ENRICA-1 cohort., Geroscience, 45, p. 221, DOI: 10.1007/s11357-022-00614-3</label>
          <listPosition>12</listPosition>
          <doi>10.1007/s11357-022-00614-3</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679179</mtid>
          <link>/api/reference/51679179</link>
          <label>13. Henderson 2023: A long-term obesogenic high-fat diet in mice partially dampens the anti-frailty benefits of late-life intermittent fasting., Geroscience, 45, p. 1247, DOI: 10.1007/s11357-022-00678-1</label>
          <listPosition>13</listPosition>
          <doi>10.1007/s11357-022-00678-1</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679180</mtid>
          <link>/api/reference/51679180</link>
          <label>14. Vetter 2022: Vitamin D supplementation is associated with slower epigenetic aging., Geroscience, 44, p. 1847, DOI: 10.1007/s11357-022-00581-9</label>
          <listPosition>14</listPosition>
          <doi>10.1007/s11357-022-00581-9</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679181</mtid>
          <link>/api/reference/51679181</link>
          <label>15. Henderson 2021: Late-life intermittent fasting decreases aging-related frailty and increases renal hydrogen sulfide production in a sexually dimorphic manner., Geroscience, 43, p. 1527, DOI: 10.1007/s11357-021-00330-4</label>
          <listPosition>15</listPosition>
          <doi>10.1007/s11357-021-00330-4</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679182</mtid>
          <link>/api/reference/51679182</link>
          <label>16. Duregon 2021: Intermittent fasting: From calories to time restriction., Geroscience, 43, p. 1083, DOI: 10.1007/s11357-021-00335-z</label>
          <listPosition>16</listPosition>
          <doi>10.1007/s11357-021-00335-z</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679183</mtid>
          <link>/api/reference/51679183</link>
          <label>17. Farrelly 2021: 50 years of the “war on cancer”: Lessons for public health and geroscience., Geroscience, 43, p. 1229, DOI: 10.1007/s11357-021-00366-6</label>
          <listPosition>17</listPosition>
          <doi>10.1007/s11357-021-00366-6</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679184</mtid>
          <link>/api/reference/51679184</link>
          <label>18. Neumann 2022: Prediction of disability-free survival in healthy older people., Geroscience, 44, p. 1641, DOI: 10.1007/s11357-022-00547-x</label>
          <listPosition>18</listPosition>
          <doi>10.1007/s11357-022-00547-x</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679185</mtid>
          <link>/api/reference/51679185</link>
          <label>19. Neumann 2022: Cardiovascular risk prediction in healthy older people., Geroscience, 44, p. 403, DOI: 10.1007/s11357-021-00486-z</label>
          <listPosition>19</listPosition>
          <doi>10.1007/s11357-021-00486-z</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679186</mtid>
          <link>/api/reference/51679186</link>
          <label>20. Gregory 2023: Mediterranean diet and structural neuroimaging biomarkers of Alzheimer’s and cerebrovascular disease: A systematic review., Exp. Gerontol., 172, p. 112065, DOI: 10.1016/j.exger.2022.112065</label>
          <listPosition>20</listPosition>
          <doi>10.1016/j.exger.2022.112065</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679187</mtid>
          <link>/api/reference/51679187</link>
          <label>21. Fekete 2024: Geroscience and pathology: A new frontier in understanding age-related diseases., Pathol. Oncol. Res., 30, p. 1611623, DOI: 10.3389/pore.2024.1611623</label>
          <listPosition>21</listPosition>
          <doi>10.3389/pore.2024.1611623</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679188</mtid>
          <link>/api/reference/51679188</link>
          <label>22. Arif 2022: Role of fruits in aging and age-related disorders., Exp. Gerontol., 162, p. 111763, DOI: 10.1016/j.exger.2022.111763</label>
          <listPosition>22</listPosition>
          <doi>10.1016/j.exger.2022.111763</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679189</mtid>
          <link>/api/reference/51679189</link>
          <label>23. Ekinci 2023: The relationship between nutrition and depression in the life process: A mini-review., Exp. Gerontol., 172, p. 112072, DOI: 10.1016/j.exger.2022.112072</label>
          <listPosition>23</listPosition>
          <doi>10.1016/j.exger.2022.112072</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679190</mtid>
          <link>/api/reference/51679190</link>
          <label>24. Ezzati 2023: The effects of time-restricted eating on sleep, cognitive decline, and Alzheimer’s disease., Exp. Gerontol., 171, p. 112033, DOI: 10.1016/j.exger.2022.112033</label>
          <listPosition>24</listPosition>
          <doi>10.1016/j.exger.2022.112033</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679191</mtid>
          <link>/api/reference/51679191</link>
          <label>25. Garcez 2022: Long-term administration of soft drink causes memory impairment and oxidative damage in adult and middle-aged rats., Exp. Gerontol., 166, p. 111873, DOI: 10.1016/j.exger.2022.111873</label>
          <listPosition>25</listPosition>
          <doi>10.1016/j.exger.2022.111873</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679192</mtid>
          <link>/api/reference/51679192</link>
          <label>26. Hsiao 2022: Higher dietary diversity and better healthy aging: A 4-year study of community-dwelling middle-aged and older adults from the Taiwan Longitudinal Study of Aging., Exp. Gerontol., 168, p. 111929, DOI: 10.1016/j.exger.2022.111929</label>
          <listPosition>26</listPosition>
          <doi>10.1016/j.exger.2022.111929</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679193</mtid>
          <link>/api/reference/51679193</link>
          <label>27. Nunan 2022: Obesity as a premature aging phenotype—Implications for sarcopenic obesity., Geroscience, 44, p. 1393, DOI: 10.1007/s11357-022-00567-7</label>
          <listPosition>27</listPosition>
          <doi>10.1007/s11357-022-00567-7</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679194</mtid>
          <link>/api/reference/51679194</link>
          <label>28. Rodgers 2021: The relative contributions of behavioral, biological, and psychological risk factors in the association between psychosocial stress and all-cause mortality among middle- and older-aged adults in the USA., Geroscience, 43, p. 655, DOI: 10.1007/s11357-020-00319-5</label>
          <listPosition>28</listPosition>
          <doi>10.1007/s11357-020-00319-5</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679195</mtid>
          <link>/api/reference/51679195</link>
          <label>29. Sheng 2022: Dietary Total Antioxidant Capacity and Late-Life Cognitive Impairment: The Singapore Chinese Health Study., J. Gerontol. A Biol. Sci. Med. Sci., 77, p. 561, DOI: 10.1093/gerona/glab100</label>
          <listPosition>29</listPosition>
          <doi>10.1093/gerona/glab100</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679196</mtid>
          <link>/api/reference/51679196</link>
          <label>30. Palta 2022: Midlife Cardiovascular Health and Robust Versus Frail Late-Life Status: The Atherosclerosis Risk in Communities Study., J. Gerontol. A Biol. Sci. Med. Sci., 77, p. 1222, DOI: 10.1093/gerona/glab310</label>
          <listPosition>30</listPosition>
          <doi>10.1093/gerona/glab310</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679197</mtid>
          <link>/api/reference/51679197</link>
          <label>31. Ortola 2022: Mediterranean Diet and Changes in Frequency, Severity, and Localization of Pain in Older Adults: The Seniors-ENRICA Cohorts., J. Gerontol. A Biol. Sci. Med. Sci., 77, p. 122, DOI: 10.1093/gerona/glab109</label>
          <listPosition>31</listPosition>
          <doi>10.1093/gerona/glab109</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679198</mtid>
          <link>/api/reference/51679198</link>
          <label>32. Merono 2022: Animal Protein Intake Is Inversely Associated With Mortality in Older Adults: The InCHIANTI Study., J. Gerontol. A Biol. Sci. Med. Sci., 77, p. 1866, DOI: 10.1093/gerona/glab334</label>
          <listPosition>32</listPosition>
          <doi>10.1093/gerona/glab334</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679199</mtid>
          <link>/api/reference/51679199</link>
          <label>33. Ortola 2022: A Mediterranean Lifestyle and Frailty Incidence in Older Adults: The Seniors-ENRICA-1 Cohort., J. Gerontol. A Biol. Sci. Med. Sci., 77, p. 1845, DOI: 10.1093/gerona/glab109</label>
          <listPosition>33</listPosition>
          <doi>10.1093/gerona/glab109</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679200</mtid>
          <link>/api/reference/51679200</link>
          <label>34. Guo 2022: Association Between Mediterranean Diet and Functional Status in Older Adults: A Longitudinal Study Based on the Washington Heights-Inwood Columbia Aging Project., J. Gerontol. A Biol. Sci. Med. Sci., 77, p. 1873, DOI: 10.1093/gerona/glac011</label>
          <listPosition>34</listPosition>
          <doi>10.1093/gerona/glac011</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679201</mtid>
          <link>/api/reference/51679201</link>
          <label>35. Zhou 2021: Association Between Combined Lifestyle Factors and Healthy Ageing in Chinese Adults: The Singapore Chinese Health Study., J. Gerontol. A Biol. Sci. Med. Sci., 76, p. 1796, DOI: 10.1093/gerona/glab033</label>
          <listPosition>35</listPosition>
          <doi>10.1093/gerona/glab033</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679202</mtid>
          <link>/api/reference/51679202</link>
          <label>36. Tessier 2021: Milk, Yogurt, and Cheese Intake Is Positively Associated With Cognitive Executive Functions in Older Adults of the Canadian Longitudinal Study on Aging., J. Gerontol. A Biol. Sci. Med. Sci., 76, p. 2223, DOI: 10.1093/gerona/glab165</label>
          <listPosition>36</listPosition>
          <doi>10.1093/gerona/glab165</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679203</mtid>
          <link>/api/reference/51679203</link>
          <label>37. Talegawkar 2021: Dietary Pattern Trajectories in Middle Age and Physical Function in Older Age., J. Gerontol. A Biol. Sci. Med. Sci., 76, p. 513, DOI: 10.1093/gerona/glaa287</label>
          <listPosition>37</listPosition>
          <doi>10.1093/gerona/glaa287</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679204</mtid>
          <link>/api/reference/51679204</link>
          <label>38. Ortola 2021: Adherence to the Mediterranean Diet and Physical Resilience in Older Adults: The Seniors-ENRICA Cohort., J. Gerontol. A Biol. Sci. Med. Sci., 76, p. 505, DOI: 10.1093/gerona/glaa277</label>
          <listPosition>38</listPosition>
          <doi>10.1093/gerona/glaa277</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679205</mtid>
          <link>/api/reference/51679205</link>
          <label>39. Cherian 2021: DASH and Mediterranean-Dash Intervention for Neurodegenerative Delay (MIND) Diets Are Associated With Fewer Depressive Symptoms Over Time., J. Gerontol. A Biol. Sci. Med. Sci., 76, p. 151, DOI: 10.1093/gerona/glaa044</label>
          <listPosition>39</listPosition>
          <doi>10.1093/gerona/glaa044</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679206</mtid>
          <link>/api/reference/51679206</link>
          <label>40. Hyatt 2023: Resveratrol Blunts Mitochondrial Loss in Slow and Mixed Skeletal Muscle Phenotypes of Non-Human Primates following a Long-Term High Fat/Sugar Diet., J. Diet. Suppl., 20, p. 563, DOI: 10.1080/19390211.2022.2039340</label>
          <listPosition>40</listPosition>
          <doi>10.1080/19390211.2022.2039340</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679207</mtid>
          <link>/api/reference/51679207</link>
          <label>41. Mishra 2021: Fasting-mimicking diet prevents high-fat diet effect on cardiometabolic risk and lifespan., Nat. Metab., 3, p. 1342, DOI: 10.1038/s42255-021-00469-6</label>
          <listPosition>41</listPosition>
          <doi>10.1038/s42255-021-00469-6</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679208</mtid>
          <link>/api/reference/51679208</link>
          <label>42. Zhang 2020: Hepatic HuR modulates lipid homeostasis in response to high-fat diet., Nat. Commun., 11, p. 3067, DOI: 10.1038/s41467-020-16918-x</label>
          <listPosition>42</listPosition>
          <doi>10.1038/s41467-020-16918-x</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679209</mtid>
          <link>/api/reference/51679209</link>
          <label>43. Choi 2020: NQO1 protects obese mice through improvements in glucose and lipid metabolism., NPJ Aging Mech. Dis., 6, p. 13, DOI: 10.1038/s41514-020-00051-6</label>
          <listPosition>43</listPosition>
          <doi>10.1038/s41514-020-00051-6</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679210</mtid>
          <link>/api/reference/51679210</link>
          <label>44. Abbasi 2017: Body Mass Index and Incident Type 1 and Type 2 Diabetes in Children and Young Adults: A Retrospective Cohort Study., J. Endocr. Soc., 1, p. 524, DOI: 10.1210/js.2017-00044</label>
          <listPosition>44</listPosition>
          <doi>10.1210/js.2017-00044</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679211</mtid>
          <link>/api/reference/51679211</link>
          <label>45. Wilding 2014: The importance of weight management in type 2 diabetes mellitus., Int. J. Clin. Pract., 68, p. 682, DOI: 10.1111/ijcp.12384</label>
          <listPosition>45</listPosition>
          <doi>10.1111/ijcp.12384</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679212</mtid>
          <link>/api/reference/51679212</link>
          <label>46. Colosia 2013: Prevalence of hypertension and obesity in patients with type 2 diabetes mellitus in observational studies: A systematic literature review., Diabetes Metab. Syndr. Obes., 6, p. 327, DOI: 10.2147/DMSO.S51325</label>
          <listPosition>46</listPosition>
          <doi>10.2147/DMSO.S51325</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679213</mtid>
          <link>/api/reference/51679213</link>
          <label>47. Al Amiri, E., Abdullatif, M., Abdulle, A., Al Bitar, N., Afandi, E.Z., Parish, M., and Darwiche, G. (2015). The prevalence, risk factors, and screening measure for prediabetes and diabetes among Emirati overweight/obese children and adolescents. BMC Public Health, 15., DOI: 10.1186/s12889-015-2649-6</label>
          <listPosition>47</listPosition>
          <doi>10.1186/s12889-015-2649-6</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679214</mtid>
          <link>/api/reference/51679214</link>
          <label>48. Bhupathiraju 2016: Epidemiology of Obesity and Diabetes and Their Cardiovascular Complications., Circ. Res., 118, p. 1723, DOI: 10.1161/CIRCRESAHA.115.306825</label>
          <listPosition>48</listPosition>
          <doi>10.1161/CIRCRESAHA.115.306825</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679215</mtid>
          <link>/api/reference/51679215</link>
          <label>49. Schachtschneider 2021: Epigenetic clock and DNA methylation analysis of porcine models of aging and obesity., Geroscience, 43, p. 2467, DOI: 10.1007/s11357-021-00439-6</label>
          <listPosition>49</listPosition>
          <doi>10.1007/s11357-021-00439-6</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679216</mtid>
          <link>/api/reference/51679216</link>
          <label>50. White 2010: NOX activity in brain aging: Exacerbation by high fat diet., Free Radic. Biol. Med., 49, p. 22, DOI: 10.1016/j.freeradbiomed.2010.03.006</label>
          <listPosition>50</listPosition>
          <doi>10.1016/j.freeradbiomed.2010.03.006</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679217</mtid>
          <link>/api/reference/51679217</link>
          <label>51. Hao 2016: Dietary obesity reversibly induces synaptic stripping by microglia and impairs hippocampal plasticity., Brain Behav. Immun., 51, p. 230, DOI: 10.1016/j.bbi.2015.08.023</label>
          <listPosition>51</listPosition>
          <doi>10.1016/j.bbi.2015.08.023</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679218</mtid>
          <link>/api/reference/51679218</link>
          <label>52. Herrero-Labrador, R., Trueba-Saiz, A., Martinez-Rachadell, L., Fernandez de Sevilla, M.E., Zegarra-Valdivia, J.A., Pignatelli, J., Diaz-Pacheco, S., Fernandez, A.M., and Torres Aleman, I. (2020). Circulating Insulin-Like Growth Factor I is Involved in the Effect of High Fat Diet on Peripheral Amyloid beta Clearance. Int. J. Mol. Sci., 21., DOI: 10.21203/rs.3.rs-60930/v1</label>
          <listPosition>52</listPosition>
          <doi>10.21203/rs.3.rs-60930/v1</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679219</mtid>
          <link>/api/reference/51679219</link>
          <label>53. Morrison 2010: High fat diet increases hippocampal oxidative stress and cognitive impairment in aged mice: Implications for decreased Nrf2 signaling., J. Neurochem., 114, p. 1581, DOI: 10.1111/j.1471-4159.2010.06865.x</label>
          <listPosition>53</listPosition>
          <doi>10.1111/j.1471-4159.2010.06865.x</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679220</mtid>
          <link>/api/reference/51679220</link>
          <label>54. Pistell 2010: Cognitive impairment following high fat diet consumption is associated with brain inflammation., J. Neuroimmunol., 219, p. 25, DOI: 10.1016/j.jneuroim.2009.11.010</label>
          <listPosition>54</listPosition>
          <doi>10.1016/j.jneuroim.2009.11.010</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679221</mtid>
          <link>/api/reference/51679221</link>
          <label>55. Schreyer 1998: C57BL/6 mice fed high fat diets as models for diabetes-accelerated atherosclerosis., Atherosclerosis, 136, p. 17, DOI: 10.1016/S0021-9150(97)00165-2</label>
          <listPosition>55</listPosition>
          <doi>10.1016/S0021-9150(97)00165-2</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679222</mtid>
          <link>/api/reference/51679222</link>
          <label>56. White 2009: Effects of high fat diet on Morris maze performance, oxidative stress, and inflammation in rats: Contributions of maternal diet., Neurobiol. Dis., 35, p. 3, DOI: 10.1016/j.nbd.2009.04.002</label>
          <listPosition>56</listPosition>
          <doi>10.1016/j.nbd.2009.04.002</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679223</mtid>
          <link>/api/reference/51679223</link>
          <label>57. Burton 2018: Obesity and type-2 diabetes as inducers of premature cellular senescence and ageing., Biogerontology, 19, p. 447, DOI: 10.1007/s10522-018-9763-7</label>
          <listPosition>57</listPosition>
          <doi>10.1007/s10522-018-9763-7</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679224</mtid>
          <link>/api/reference/51679224</link>
          <label>58. Ryder 2020: Accelerated Early Vascular Aging Among Adolescents With Obesity and/or Type 2 Diabetes Mellitus., J. Am. Heart Assoc., 9, p. e014891, DOI: 10.1161/JAHA.119.014891</label>
          <listPosition>58</listPosition>
          <doi>10.1161/JAHA.119.014891</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679225</mtid>
          <link>/api/reference/51679225</link>
          <label>59. Tucsek 2014: Aging exacerbates obesity-induced cerebromicrovascular rarefaction, neurovascular uncoupling, and cognitive decline in mice., J. Gerontol. A Biol. Sci. Med. Sci., 69, p. 1339, DOI: 10.1093/gerona/glu080</label>
          <listPosition>59</listPosition>
          <doi>10.1093/gerona/glu080</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679226</mtid>
          <link>/api/reference/51679226</link>
          <label>60. Wubishet 2021: Impact of Diabetes on Life and Healthy Life Expectancy Among Older Women., J. Gerontol. A Biol. Sci. Med. Sci., 76, p. 914, DOI: 10.1093/gerona/glaa172</label>
          <listPosition>60</listPosition>
          <doi>10.1093/gerona/glaa172</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679227</mtid>
          <link>/api/reference/51679227</link>
          <label>61. Espeland 2022: Eight-Year Changes in Multimorbidity and Frailty in Adults With Type 2 Diabetes Mellitus: Associations With Cognitive and Physical Function and Mortality., J. Gerontol. A Biol. Sci. Med. Sci., 77, p. 1691, DOI: 10.1093/gerona/glab342</label>
          <listPosition>61</listPosition>
          <doi>10.1093/gerona/glab342</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679228</mtid>
          <link>/api/reference/51679228</link>
          <label>62. Kingston 2021: The Impact of Smoking and Obesity on Disability-Free Life Expectancy in Older Australians., J. Gerontol. A Biol. Sci. Med. Sci., 76, p. 1265, DOI: 10.1093/gerona/glaa290</label>
          <listPosition>62</listPosition>
          <doi>10.1093/gerona/glaa290</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679229</mtid>
          <link>/api/reference/51679229</link>
          <label>63. Vesentini 2022: Effects of high-fat diet-induced diabetes on autophagy in the murine liver: A systematic review and meta-analysis., Life Sci., 309, p. 121012, DOI: 10.1016/j.lfs.2022.121012</label>
          <listPosition>63</listPosition>
          <doi>10.1016/j.lfs.2022.121012</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679230</mtid>
          <link>/api/reference/51679230</link>
          <label>64. Herrenbruck 2020: Role of skeletal muscle autophagy in high-fat-diet-induced obesity and exercise., Nutr. Rev., 78, p. 56, DOI: 10.1093/nutrit/nuz044</label>
          <listPosition>64</listPosition>
          <doi>10.1093/nutrit/nuz044</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679231</mtid>
          <link>/api/reference/51679231</link>
          <label>65. Rasool 2018: High Fat With High Sucrose Diet Leads to Obesity and Induces Myodegeneration., Front. Physiol., 9, p. 1054, DOI: 10.3389/fphys.2018.01054</label>
          <listPosition>65</listPosition>
          <doi>10.3389/fphys.2018.01054</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679232</mtid>
          <link>/api/reference/51679232</link>
          <label>66. Silva 2023: Effects of a high-fat diet on the bone structure of Wistar rats: A systematic review., Nutr. Rev., 81, p. 1441, DOI: 10.1093/nutrit/nuad024</label>
          <listPosition>66</listPosition>
          <doi>10.1093/nutrit/nuad024</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679233</mtid>
          <link>/api/reference/51679233</link>
          <label>67. Uhomoibhi 2022: High-Fat Diet as a Risk Factor for Breast Cancer: A Meta-Analysis., Cureus, 14, p. e32309</label>
          <listPosition>67</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679234</mtid>
          <link>/api/reference/51679234</link>
          <label>68. Goedeke 2022: Sex- and strain-specific effects of mitochondrial uncoupling on age-related metabolic diseases in high-fat diet-fed mice., Aging Cell, 21, p. e13539, DOI: 10.1111/acel.13539</label>
          <listPosition>68</listPosition>
          <doi>10.1111/acel.13539</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679235</mtid>
          <link>/api/reference/51679235</link>
          <label>69. Bernier 2016: Resveratrol supplementation confers neuroprotection in cortical brain tissue of nonhuman primates fed a high-fat/sucrose diet., Aging, 8, p. 899, DOI: 10.18632/aging.100942</label>
          <listPosition>69</listPosition>
          <doi>10.18632/aging.100942</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679236</mtid>
          <link>/api/reference/51679236</link>
          <label>70. Allard 2016: Prolonged metformin treatment leads to reduced transcription of Nrf2 and neurotrophic factors without cognitive impairment in older C57BL/6J mice., Behav. Brain Res., 301, p. 1, DOI: 10.1016/j.bbr.2015.12.012</label>
          <listPosition>70</listPosition>
          <doi>10.1016/j.bbr.2015.12.012</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679237</mtid>
          <link>/api/reference/51679237</link>
          <label>71. Mitchell 2014: The SIRT1 activator SRT1720 extends lifespan and improves health of mice fed a standard diet., Cell Rep., 6, p. 836, DOI: 10.1016/j.celrep.2014.01.031</label>
          <listPosition>71</listPosition>
          <doi>10.1016/j.celrep.2014.01.031</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679238</mtid>
          <link>/api/reference/51679238</link>
          <label>72. Mattison 2014: Resveratrol prevents high fat/sucrose diet-induced central arterial wall inflammation and stiffening in nonhuman primates., Cell Metab., 20, p. 183, DOI: 10.1016/j.cmet.2014.04.018</label>
          <listPosition>72</listPosition>
          <doi>10.1016/j.cmet.2014.04.018</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679239</mtid>
          <link>/api/reference/51679239</link>
          <label>73. Minor 2011: SRT1720 improves survival and healthspan of obese mice., Sci. Rep., 1, p. 70, DOI: 10.1038/srep00070</label>
          <listPosition>73</listPosition>
          <doi>10.1038/srep00070</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679240</mtid>
          <link>/api/reference/51679240</link>
          <label>74. Dodig, S., Cepelak, I., and Pavic, I. (2019). Hallmarks of senescence and aging. Biochem. Med., 29., DOI: 10.11613/BM.2019.030501</label>
          <listPosition>74</listPosition>
          <doi>10.11613/BM.2019.030501</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679241</mtid>
          <link>/api/reference/51679241</link>
          <label>75. Gorgoulis 2019: Cellular Senescence: Defining a Path Forward., Cell, 179, p. 813, DOI: 10.1016/j.cell.2019.10.005</label>
          <listPosition>75</listPosition>
          <doi>10.1016/j.cell.2019.10.005</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679242</mtid>
          <link>/api/reference/51679242</link>
          <label>76. Teuliere 2023: Network analyses unveil ageing-associated pathways evolutionarily conserved from fungi to animals., Geroscience, 45, p. 1059, DOI: 10.1007/s11357-022-00704-2</label>
          <listPosition>76</listPosition>
          <doi>10.1007/s11357-022-00704-2</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679243</mtid>
          <link>/api/reference/51679243</link>
          <label>77. Burnaevskiy 2023: Rapid emergence of transcriptional heterogeneity upon molecular stress predisposes cells to two distinct states of senescence., Geroscience, 45, p. 1115, DOI: 10.1007/s11357-022-00709-x</label>
          <listPosition>77</listPosition>
          <doi>10.1007/s11357-022-00709-x</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679244</mtid>
          <link>/api/reference/51679244</link>
          <label>78. Yang 2022: Single-cell transcriptomics identifies premature aging features of TERC-deficient mouse brain and bone marrow., Geroscience, 44, p. 2139, DOI: 10.1007/s11357-022-00578-4</label>
          <listPosition>78</listPosition>
          <doi>10.1007/s11357-022-00578-4</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679245</mtid>
          <link>/api/reference/51679245</link>
          <label>79. Swift 2022: DNA damage-induced degradation of Sp1 promotes cellular senescence., Geroscience, 44, p. 683, DOI: 10.1007/s11357-021-00456-5</label>
          <listPosition>79</listPosition>
          <doi>10.1007/s11357-021-00456-5</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679246</mtid>
          <link>/api/reference/51679246</link>
          <label>80. Matacchione 2022: Senescent macrophages in the human adipose tissue as a source of inflammaging., Geroscience, 44, p. 1941, DOI: 10.1007/s11357-022-00536-0</label>
          <listPosition>80</listPosition>
          <doi>10.1007/s11357-022-00536-0</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679247</mtid>
          <link>/api/reference/51679247</link>
          <label>81. Fielding 2022: Associations between biomarkers of cellular senescence and physical function in humans: Observations from the lifestyle interventions for elders (LIFE) study., Geroscience, 44, p. 2757, DOI: 10.1007/s11357-022-00685-2</label>
          <listPosition>81</listPosition>
          <doi>10.1007/s11357-022-00685-2</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679248</mtid>
          <link>/api/reference/51679248</link>
          <label>82. Kavanagh 2021: Biomarkers of senescence in non-human primate adipose depots relate to aging., Geroscience, 43, p. 343, DOI: 10.1007/s11357-020-00230-z</label>
          <listPosition>82</listPosition>
          <doi>10.1007/s11357-020-00230-z</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679249</mtid>
          <link>/api/reference/51679249</link>
          <label>83. Karin 2021: Senescent cell accumulation mechanisms inferred from parabiosis., Geroscience, 43, p. 329, DOI: 10.1007/s11357-020-00286-x</label>
          <listPosition>83</listPosition>
          <doi>10.1007/s11357-020-00286-x</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679250</mtid>
          <link>/api/reference/51679250</link>
          <label>84. Yousefzadeh 2020: Heterochronic parabiosis regulates the extent of cellular senescence in multiple tissues., Geroscience, 42, p. 951, DOI: 10.1007/s11357-020-00185-1</label>
          <listPosition>84</listPosition>
          <doi>10.1007/s11357-020-00185-1</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679251</mtid>
          <link>/api/reference/51679251</link>
          <label>85. Han 2022: Potential Regulators of the Senescence-Associated Secretory Phenotype During Senescence and Aging., J. Gerontol. A Biol. Sci. Med. Sci., 77, p. 2207, DOI: 10.1093/gerona/glac097</label>
          <listPosition>85</listPosition>
          <doi>10.1093/gerona/glac097</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679252</mtid>
          <link>/api/reference/51679252</link>
          <label>86. Basisty, N., Kale, A., Jeon, O.H., Kuehnemann, C., Payne, T., Rao, C., Holtz, A., Shah, S., Sharma, V., and Ferrucci, L. (2020). A proteomic atlas of senescence-associated secretomes for aging biomarker development. PLoS Biol., 18., DOI: 10.1371/journal.pbio.3000599</label>
          <listPosition>86</listPosition>
          <doi>10.1371/journal.pbio.3000599</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679253</mtid>
          <link>/api/reference/51679253</link>
          <label>87. Tchkonia 2013: Cellular senescence and the senescent secretory phenotype: Therapeutic opportunities., J. Clin. Invest., 123, p. 966, DOI: 10.1172/JCI64098</label>
          <listPosition>87</listPosition>
          <doi>10.1172/JCI64098</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679254</mtid>
          <link>/api/reference/51679254</link>
          <label>88. Rowell 2019: The senescence-associated secretory phenotype and its regulation., Cytokine, 117, p. 15, DOI: 10.1016/j.cyto.2019.01.013</label>
          <listPosition>88</listPosition>
          <doi>10.1016/j.cyto.2019.01.013</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679255</mtid>
          <link>/api/reference/51679255</link>
          <label>89. Childs 2015: Cellular senescence in aging and age-related disease: From mechanisms to therapy., Nat. Med., 21, p. 1424, DOI: 10.1038/nm.4000</label>
          <listPosition>89</listPosition>
          <doi>10.1038/nm.4000</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679256</mtid>
          <link>/api/reference/51679256</link>
          <label>90. Bloom 2022: Aging results in DNA damage and telomere dysfunction that is greater in endothelial versus vascular smooth muscle cells and is exacerbated in atheroprone regions., Geroscience, 44, p. 2741, DOI: 10.1007/s11357-022-00681-6</label>
          <listPosition>90</listPosition>
          <doi>10.1007/s11357-022-00681-6</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679257</mtid>
          <link>/api/reference/51679257</link>
          <label>91. Sakamuri 2022: Amyloid [Formula: See text] (1-42) peptide impairs mitochondrial respiration in primary human brain microvascular endothelial cells: Impact of dysglycemia and pre-senescence., Geroscience, 44, p. 2721, DOI: 10.1007/s11357-022-00644-x</label>
          <listPosition>91</listPosition>
          <doi>10.1007/s11357-022-00644-x</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679258</mtid>
          <link>/api/reference/51679258</link>
          <label>92. Sakamuri 2022: Glycolytic and Oxidative Phosphorylation Defects Precede the Development of Senescence in Primary Human Brain Microvascular Endothelial Cells., Geroscience, 44, p. 1975, DOI: 10.1007/s11357-022-00550-2</label>
          <listPosition>92</listPosition>
          <doi>10.1007/s11357-022-00550-2</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679259</mtid>
          <link>/api/reference/51679259</link>
          <label>93. Bussian 2018: Clearance of senescent glial cells prevents tau-dependent pathology and cognitive decline., Nature, 562, p. 578, DOI: 10.1038/s41586-018-0543-y</label>
          <listPosition>93</listPosition>
          <doi>10.1038/s41586-018-0543-y</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679260</mtid>
          <link>/api/reference/51679260</link>
          <label>94. Chang 2016: Clearance of senescent cells by ABT263 rejuvenates aged hematopoietic stem cells in mice., Nat. Med., 22, p. 78, DOI: 10.1038/nm.4010</label>
          <listPosition>94</listPosition>
          <doi>10.1038/nm.4010</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679261</mtid>
          <link>/api/reference/51679261</link>
          <label>95. Tarantini 2021: Treatment with the BCL-2/BCL-xL inhibitor senolytic drug ABT263/Navitoclax improves functional hyperemia in aged mice., Geroscience, 43, p. 2427, DOI: 10.1007/s11357-021-00440-z</label>
          <listPosition>95</listPosition>
          <doi>10.1007/s11357-021-00440-z</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679262</mtid>
          <link>/api/reference/51679262</link>
          <label>96. Demaria 2017: Cellular Senescence Promotes Adverse Effects of Chemotherapy and Cancer Relapse., Cancer Discov., 7, p. 165, DOI: 10.1158/2159-8290.CD-16-0241</label>
          <listPosition>96</listPosition>
          <doi>10.1158/2159-8290.CD-16-0241</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679263</mtid>
          <link>/api/reference/51679263</link>
          <label>97. Ahire 2023: Accelerated cerebromicrovascular senescence contributes to cognitive decline in a mouse model of paclitaxel (Taxol)-induced chemobrain., Aging Cell, 22, p. e13832, DOI: 10.1111/acel.13832</label>
          <listPosition>97</listPosition>
          <doi>10.1111/acel.13832</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679264</mtid>
          <link>/api/reference/51679264</link>
          <label>98. Dorigatti 2022: Brain cellular senescence in mouse models of Alzheimer’s disease., Geroscience, 44, p. 1157, DOI: 10.1007/s11357-022-00531-5</label>
          <listPosition>98</listPosition>
          <doi>10.1007/s11357-022-00531-5</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679265</mtid>
          <link>/api/reference/51679265</link>
          <label>99. Olivieri 2018: Cellular Senescence and Inflammaging in Age-Related Diseases., Mediat. Inflamm., 2018, p. 9076485, DOI: 10.1155/2018/9076485</label>
          <listPosition>99</listPosition>
          <doi>10.1155/2018/9076485</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679266</mtid>
          <link>/api/reference/51679266</link>
          <label>100. Ferrucci 2018: Inflammageing: Chronic inflammation in ageing, cardiovascular disease, and frailty., Nat. Rev. Cardiol., 15, p. 505, DOI: 10.1038/s41569-018-0064-2</label>
          <listPosition>100</listPosition>
          <doi>10.1038/s41569-018-0064-2</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679267</mtid>
          <link>/api/reference/51679267</link>
          <label>101. Saccon 2021: Senolytic Combination of Dasatinib and Quercetin Alleviates Intestinal Senescence and Inflammation and Modulates the Gut Microbiome in Aged Mice., J. Gerontol. A Biol. Sci. Med. Sci., 76, p. 1895, DOI: 10.1093/gerona/glab002</label>
          <listPosition>101</listPosition>
          <doi>10.1093/gerona/glab002</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679268</mtid>
          <link>/api/reference/51679268</link>
          <label>102. Ogrodnik 2019: Obesity-Induced Cellular Senescence Drives Anxiety and Impairs Neurogenesis., Cell Metab., 29, p. 1061, DOI: 10.1016/j.cmet.2018.12.008</label>
          <listPosition>102</listPosition>
          <doi>10.1016/j.cmet.2018.12.008</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679269</mtid>
          <link>/api/reference/51679269</link>
          <label>103. Shi 2013: Longitudinal analysis of short-term high-fat diet on endothelial senescence in baboons., Am. J. Cardiovasc. Dis., 3, p. 107</label>
          <listPosition>103</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679270</mtid>
          <link>/api/reference/51679270</link>
          <label>104. Shi 2007: Endothelial senescence after high-cholesterol, high-fat diet challenge in baboons., Am. J. Physiol. Heart Circ. Physiol., 292, p. H2913, DOI: 10.1152/ajpheart.01405.2006</label>
          <listPosition>104</listPosition>
          <doi>10.1152/ajpheart.01405.2006</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679271</mtid>
          <link>/api/reference/51679271</link>
          <label>105. Zhang 2018: High-fat diet modifies expression of hepatic cellular senescence gene p16(INK4a) through chromatin modifications in adult male rats., Genes Nutr., 13, p. 6, DOI: 10.1186/s12263-018-0595-5</label>
          <listPosition>105</listPosition>
          <doi>10.1186/s12263-018-0595-5</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679272</mtid>
          <link>/api/reference/51679272</link>
          <label>106. Zhang 2016: Resveratrol Protects against High-Fat Diet Induced Renal Pathological Damage and Cell Senescence by Activating SIRT1., Biol. Pharm. Bull., 39, p. 1448, DOI: 10.1248/bpb.b16-00085</label>
          <listPosition>106</listPosition>
          <doi>10.1248/bpb.b16-00085</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679273</mtid>
          <link>/api/reference/51679273</link>
          <label>107. Takahashi 2024: A preliminary therapeutic study of the effects of molecular hydrogen on intestinal dysbiosis and small intestinal injury in high-fat diet-loaded senescence-accelerated mice., Nutrition, 122, p. 112372, DOI: 10.1016/j.nut.2024.112372</label>
          <listPosition>107</listPosition>
          <doi>10.1016/j.nut.2024.112372</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679274</mtid>
          <link>/api/reference/51679274</link>
          <label>108. Sone 2005: Pancreatic beta cell senescence contributes to the pathogenesis of type 2 diabetes in high-fat diet-induced diabetic mice., Diabetologia, 48, p. 58, DOI: 10.1007/s00125-004-1605-2</label>
          <listPosition>108</listPosition>
          <doi>10.1007/s00125-004-1605-2</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679275</mtid>
          <link>/api/reference/51679275</link>
          <label>109. Pini 2021: Adipose tissue senescence is mediated by increased ATP content after a short-term high-fat diet exposure., Aging Cell, 20, p. e13421, DOI: 10.1111/acel.13421</label>
          <listPosition>109</listPosition>
          <doi>10.1111/acel.13421</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679276</mtid>
          <link>/api/reference/51679276</link>
          <label>110. Li 2021: High-fat diet and dyslipidemia synergistically contribute to T cell senescence in gut associated lymphoid tissue., Exp. Gerontol., 151, p. 111404, DOI: 10.1016/j.exger.2021.111404</label>
          <listPosition>110</listPosition>
          <doi>10.1016/j.exger.2021.111404</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679277</mtid>
          <link>/api/reference/51679277</link>
          <label>111. Kim 2019: Increased renal cellular senescence in murine high-fat diet: Effect of the senolytic drug quercetin., Transl. Res., 213, p. 112, DOI: 10.1016/j.trsl.2019.07.005</label>
          <listPosition>111</listPosition>
          <doi>10.1016/j.trsl.2019.07.005</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679278</mtid>
          <link>/api/reference/51679278</link>
          <label>112. Hou 2022: High fat diet-induced brain damaging effects through autophagy-mediated senescence, inflammation and apoptosis mitigated by ginsenoside F1-enhanced mixture., J. Ginseng Res., 46, p. 79, DOI: 10.1016/j.jgr.2021.04.002</label>
          <listPosition>112</listPosition>
          <doi>10.1016/j.jgr.2021.04.002</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679279</mtid>
          <link>/api/reference/51679279</link>
          <label>113. Ukraintseva 2021: Decline in biological resilience as key manifestation of aging: Potential mechanisms and role in health and longevity., Mech. Ageing Dev., 194, p. 111418, DOI: 10.1016/j.mad.2020.111418</label>
          <listPosition>113</listPosition>
          <doi>10.1016/j.mad.2020.111418</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679280</mtid>
          <link>/api/reference/51679280</link>
          <label>114. Blasco 2013: The hallmarks of aging., Cell, 153, p. 1194, DOI: 10.1016/j.cell.2013.05.039</label>
          <listPosition>114</listPosition>
          <doi>10.1016/j.cell.2013.05.039</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679281</mtid>
          <link>/api/reference/51679281</link>
          <label>115. Collins 2009: Age-accelerated atherosclerosis correlates with failure to upregulate antioxidant genes., Circ. Res., 104, p. e42, DOI: 10.1161/CIRCRESAHA.108.188771</label>
          <listPosition>115</listPosition>
          <doi>10.1161/CIRCRESAHA.108.188771</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679282</mtid>
          <link>/api/reference/51679282</link>
          <label>116. Ungvari 2011: Adaptive induction of NF-E2-Related Factor-2-driven antioxidant genes in endothelial cells in response to hyperglycemia., Am. J. Physiol. Heart Circ. Physiol., 300, p. H1133, DOI: 10.1152/ajpheart.00402.2010</label>
          <listPosition>116</listPosition>
          <doi>10.1152/ajpheart.00402.2010</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679283</mtid>
          <link>/api/reference/51679283</link>
          <label>117. Ungvari 2019: Nrf2 dysfunction and impaired cellular resilience to oxidative stressors in the aged vasculature: From increased cellular senescence to the pathogenesis of age-related vascular diseases., Geroscience, 41, p. 727, DOI: 10.1007/s11357-019-00107-w</label>
          <listPosition>117</listPosition>
          <doi>10.1007/s11357-019-00107-w</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679284</mtid>
          <link>/api/reference/51679284</link>
          <label>118. Sivandzade, F., Prasad, S., Bhalerao, A., and Cucullo, L. (2019). NRF2 and NF-B interplay in cerebrovascular and neurodegenerative disorders: Molecular mechanisms and possible therapeutic approaches. Redox Biol., 21., DOI: 10.1016/j.redox.2018.11.017</label>
          <listPosition>118</listPosition>
          <doi>10.1016/j.redox.2018.11.017</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679285</mtid>
          <link>/api/reference/51679285</link>
          <label>119. Tarantini 2018: Nrf2 Deficiency Exacerbates Obesity-Induced Oxidative Stress, Neurovascular Dysfunction, Blood-Brain Barrier Disruption, Neuroinflammation, Amyloidogenic Gene Expression, and Cognitive Decline in Mice, Mimicking the Aging Phenotype., J. Gerontol. A Biol. Sci. Med. Sci., 73, p. 853, DOI: 10.1093/gerona/glx177</label>
          <listPosition>119</listPosition>
          <doi>10.1093/gerona/glx177</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679286</mtid>
          <link>/api/reference/51679286</link>
          <label>120. Demaria 2014: An essential role for senescent cells in optimal wound healing through secretion of PDGF-AA., Dev. Cell, 31, p. 722, DOI: 10.1016/j.devcel.2014.11.012</label>
          <listPosition>120</listPosition>
          <doi>10.1016/j.devcel.2014.11.012</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679287</mtid>
          <link>/api/reference/51679287</link>
          <label>121. Yabluchanskiy 2020: Pharmacological or genetic depletion of senescent astrocytes prevents whole brain irradiation-induced impairment of neurovascular coupling responses protecting cognitive function in mice., Geroscience, 42, p. 409, DOI: 10.1007/s11357-020-00154-8</label>
          <listPosition>121</listPosition>
          <doi>10.1007/s11357-020-00154-8</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679288</mtid>
          <link>/api/reference/51679288</link>
          <label>122. Patil 2019: Systemic clearance of p16(INK4a) -positive senescent cells mitigates age-associated intervertebral disc degeneration., Aging Cell, 18, p. e12927, DOI: 10.1111/acel.12927</label>
          <listPosition>122</listPosition>
          <doi>10.1111/acel.12927</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679289</mtid>
          <link>/api/reference/51679289</link>
          <label>123. Kim 2019: Elimination of senescent osteoclast progenitors has no effect on the age-associated loss of bone mass in mice., Aging Cell, 18, p. e12923, DOI: 10.1111/acel.12923</label>
          <listPosition>123</listPosition>
          <doi>10.1111/acel.12923</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679290</mtid>
          <link>/api/reference/51679290</link>
          <label>124. Sun 2019: Acute myeloid leukemia induces protumoral p16INK4a-driven senescence in the bone marrow microenvironment., Blood, 133, p. 446, DOI: 10.1182/blood-2018-04-845420</label>
          <listPosition>124</listPosition>
          <doi>10.1182/blood-2018-04-845420</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679291</mtid>
          <link>/api/reference/51679291</link>
          <label>125. Kohli 2018: A novel suicide gene therapy for the treatment of p16(Ink4a)-overexpressing tumors., Oncotarget, 9, p. 7274, DOI: 10.18632/oncotarget.23752</label>
          <listPosition>125</listPosition>
          <doi>10.18632/oncotarget.23752</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679292</mtid>
          <link>/api/reference/51679292</link>
          <label>126. Jeon 2017: Local clearance of senescent cells attenuates the development of post-traumatic osteoarthritis and creates a pro-regenerative environment., Nat. Med., 23, p. 775, DOI: 10.1038/nm.4324</label>
          <listPosition>126</listPosition>
          <doi>10.1038/nm.4324</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679293</mtid>
          <link>/api/reference/51679293</link>
          <label>127. Mahoney 2024: Intermittent supplementation with fisetin improves arterial function in old mice by decreasing cellular senescence., Aging Cell, 23, p. e14060, DOI: 10.1111/acel.14060</label>
          <listPosition>127</listPosition>
          <doi>10.1111/acel.14060</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679294</mtid>
          <link>/api/reference/51679294</link>
          <label>128. Clayton 2023: Cellular Senescence Contributes to Large Elastic Artery Stiffening and Endothelial Dysfunction With Aging: Amelioration With Senolytic Treatment., Hypertension, 80, p. 2072, DOI: 10.1161/HYPERTENSIONAHA.123.21392</label>
          <listPosition>128</listPosition>
          <doi>10.1161/HYPERTENSIONAHA.123.21392</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679295</mtid>
          <link>/api/reference/51679295</link>
          <label>129. Fulop 2018: Nrf2 deficiency in aged mice exacerbates cellular senescence promoting cerebrovascular inflammation., Geroscience, 40, p. 513, DOI: 10.1007/s11357-018-0047-6</label>
          <listPosition>129</listPosition>
          <doi>10.1007/s11357-018-0047-6</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679296</mtid>
          <link>/api/reference/51679296</link>
          <label>130. Kiss 2020: Single-cell RNA sequencing identifies senescent cerebromicrovascular endothelial cells in the aged mouse brain., Geroscience, 42, p. 429, DOI: 10.1007/s11357-020-00177-1</label>
          <listPosition>130</listPosition>
          <doi>10.1007/s11357-020-00177-1</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679297</mtid>
          <link>/api/reference/51679297</link>
          <label>131. McFadden 2020: Dysregulation of protein degradation in the hippocampus is associated with impaired spatial memory during the development of obesity., Behav. Brain Res., 393, p. 112787, DOI: 10.1016/j.bbr.2020.112787</label>
          <listPosition>131</listPosition>
          <doi>10.1016/j.bbr.2020.112787</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679298</mtid>
          <link>/api/reference/51679298</link>
          <label>132. Moroz 2008: Limited Alzheimer-type neurodegeneration in experimental obesity and type 2 diabetes mellitus., J. Alzheimers Dis., 15, p. 29, DOI: 10.3233/JAD-2008-15103</label>
          <listPosition>132</listPosition>
          <doi>10.3233/JAD-2008-15103</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679299</mtid>
          <link>/api/reference/51679299</link>
          <label>133. Nuzzo 2019: Glucagon-like peptide-2 reduces the obesity-associated inflammation in the brain., Neurobiol. Dis., 121, p. 296, DOI: 10.1016/j.nbd.2018.10.012</label>
          <listPosition>133</listPosition>
          <doi>10.1016/j.nbd.2018.10.012</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679300</mtid>
          <link>/api/reference/51679300</link>
          <label>134. Tucsek 2014: Obesity in aging exacerbates blood-brain barrier disruption, neuroinflammation, and oxidative stress in the mouse hippocampus: Effects on expression of genes involved in beta-amyloid generation and Alzheimer’s disease., J. Gerontol. A Biol. Sci. Med. Sci., 69, p. 1212, DOI: 10.1093/gerona/glt177</label>
          <listPosition>134</listPosition>
          <doi>10.1093/gerona/glt177</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679301</mtid>
          <link>/api/reference/51679301</link>
          <label>135. Tucsek 2018: Obesity in Aging Exacerbates Neuroinflammation, Dysregulating Synaptic Function-related Genes and Altering Eicosanoid Synthesis in the Mouse Hippocampus: Potential Role in Impaired Synaptic Plasticity and Cognitive Decline., J. Gerontol. A Biol. Sci. Med. Sci., 74, p. 290</label>
          <listPosition>135</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679302</mtid>
          <link>/api/reference/51679302</link>
          <label>136. Baur 2006: Resveratrol improves health and survival of mice on a high-calorie diet., Nature, 444, p. 337, DOI: 10.1038/nature05354</label>
          <listPosition>136</listPosition>
          <doi>10.1038/nature05354</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679303</mtid>
          <link>/api/reference/51679303</link>
          <label>137. Gounder, S.S., Kannan, S., Devadoss, D., Miller, C.J., Whitehead, K.J., Odelberg, S.J., Firpo, M.A., Paine, R., Hoidal, J.R., and Abel, E.D. (2012). Impaired transcriptional activity of Nrf2 in age-related myocardial oxidative stress is reversible by moderate exercise training. PLoS ONE, 7., DOI: 10.1371/annotation/8690bb36-3c5d-48a6-b3be-39a2b50896e1</label>
          <listPosition>137</listPosition>
          <doi>10.1371/annotation/8690bb36-3c5d-48a6-b3be-39a2b50896e1</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679304</mtid>
          <link>/api/reference/51679304</link>
          <label>138. Gautam 2012: Disruption of Nrf2 signaling impairs angiogenic capacity of endothelial cells: Implications for microvascular aging., J. Gerontol. A Biol. Sci. Med. Sci., 67, p. 821, DOI: 10.1093/gerona/glr229</label>
          <listPosition>138</listPosition>
          <doi>10.1093/gerona/glr229</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679305</mtid>
          <link>/api/reference/51679305</link>
          <label>139. Smith 2015: Age-related loss of hepatic Nrf2 protein homeostasis: Potential role for heightened expression of miR-146a., Free Radic. Biol. Med., 89, p. 1184, DOI: 10.1016/j.freeradbiomed.2015.11.003</label>
          <listPosition>139</listPosition>
          <doi>10.1016/j.freeradbiomed.2015.11.003</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679306</mtid>
          <link>/api/reference/51679306</link>
          <label>140. Zhou 2018: Aging-related decline in the induction of Nrf2-regulated antioxidant genes in human bronchial epithelial cells., Redox Biol., 14, p. 35, DOI: 10.1016/j.redox.2017.08.014</label>
          <listPosition>140</listPosition>
          <doi>10.1016/j.redox.2017.08.014</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679307</mtid>
          <link>/api/reference/51679307</link>
          <label>141. Ungvari 2011: Age-associated vascular oxidative stress, Nrf2 dysfunction, and NF-kappaB activation in the nonhuman primate Macaca mulatta., J. Gerontol. A Biol. Sci. Med. Sci., 66, p. 866, DOI: 10.1093/gerona/glr092</label>
          <listPosition>141</listPosition>
          <doi>10.1093/gerona/glr092</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679308</mtid>
          <link>/api/reference/51679308</link>
          <label>142. Safdar 2010: Dysfunctional Nrf2-Keap1 redox signaling in skeletal muscle of the sedentary old., Free Radic. Biol. Med., 49, p. 1487, DOI: 10.1016/j.freeradbiomed.2010.08.010</label>
          <listPosition>142</listPosition>
          <doi>10.1016/j.freeradbiomed.2010.08.010</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679309</mtid>
          <link>/api/reference/51679309</link>
          <label>143. Rahman 2013: Declining signal dependence of Nrf2-MafS-regulated gene expression correlates with aging phenotypes., Aging Cell, 12, p. 554, DOI: 10.1111/acel.12078</label>
          <listPosition>143</listPosition>
          <doi>10.1111/acel.12078</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679310</mtid>
          <link>/api/reference/51679310</link>
          <label>144. Matsumaru, D., and Motohashi, H. (2021). The KEAP1-NRF2 System in Healthy Aging and Longevity. Antioxidants, 10., DOI: 10.3390/antiox10121929</label>
          <listPosition>144</listPosition>
          <doi>10.3390/antiox10121929</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679311</mtid>
          <link>/api/reference/51679311</link>
          <label>145. Yang 2022: Inhibition of Nrf2 degradation alleviates age-related osteoporosis induced by 1,25-Dihydroxyvitamin D deficiency., Free Radic. Biol. Med., 178, p. 246, DOI: 10.1016/j.freeradbiomed.2021.12.010</label>
          <listPosition>145</listPosition>
          <doi>10.1016/j.freeradbiomed.2021.12.010</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679312</mtid>
          <link>/api/reference/51679312</link>
          <label>146. Mohammad, R.S., Lokhandwala, M.F., and Banday, A.A. (2022). Age-Related Mitochondrial Impairment and Renal Injury Is Ameliorated by Sulforaphane via Activation of Transcription Factor NRF2. Antioxidants, 11., DOI: 10.3390/antiox11010156</label>
          <listPosition>146</listPosition>
          <doi>10.3390/antiox11010156</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679313</mtid>
          <link>/api/reference/51679313</link>
          <label>147. Riordan 2023: Effect of Nrf2 loss on senescence and cognition of tau-based P301S mice., Geroscience, 45, p. 1451, DOI: 10.1007/s11357-023-00760-2</label>
          <listPosition>147</listPosition>
          <doi>10.1007/s11357-023-00760-2</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679314</mtid>
          <link>/api/reference/51679314</link>
          <label>148. Schafer 2016: Exercise Prevents Diet-Induced Cellular Senescence in Adipose Tissue., Diabetes, 65, p. 1606, DOI: 10.2337/db15-0291</label>
          <listPosition>148</listPosition>
          <doi>10.2337/db15-0291</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679315</mtid>
          <link>/api/reference/51679315</link>
          <label>149. Palmer 2019: Targeting senescent cells alleviates obesity-induced metabolic dysfunction., Aging Cell, 18, p. e12950, DOI: 10.1111/acel.12950</label>
          <listPosition>149</listPosition>
          <doi>10.1111/acel.12950</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679316</mtid>
          <link>/api/reference/51679316</link>
          <label>150. Balasubramanian 2021: Obesity-induced cognitive impairment in older adults: A microvascular perspective., Am. J. Physiol. Heart Circ. Physiol., 320, p. H740, DOI: 10.1152/ajpheart.00736.2020</label>
          <listPosition>150</listPosition>
          <doi>10.1152/ajpheart.00736.2020</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679317</mtid>
          <link>/api/reference/51679317</link>
          <label>151. Matsushita 2001: eNOS activity is reduced in senescent human endothelial cells: Preservation by hTERT immortalization., Circ. Res., 89, p. 793, DOI: 10.1161/hh2101.098443</label>
          <listPosition>151</listPosition>
          <doi>10.1161/hh2101.098443</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679318</mtid>
          <link>/api/reference/51679318</link>
          <label>152. Krouwer 2012: Endothelial cell senescence is associated with disrupted cell-cell junctions and increased monolayer permeability., Vasc. Cell, 4, p. 12, DOI: 10.1186/2045-824X-4-12</label>
          <listPosition>152</listPosition>
          <doi>10.1186/2045-824X-4-12</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679319</mtid>
          <link>/api/reference/51679319</link>
          <label>153. Yamazaki 2016: Vascular Cell Senescence Contributes to Blood-Brain Barrier Breakdown., Stroke, 47, p. 1068, DOI: 10.1161/STROKEAHA.115.010835</label>
          <listPosition>153</listPosition>
          <doi>10.1161/STROKEAHA.115.010835</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679320</mtid>
          <link>/api/reference/51679320</link>
          <label>154. Gulej 2023: Elimination of senescent cells by treatment with Navitoclax/ABT263 reverses whole brain irradiation-induced blood-brain barrier disruption in the mouse brain., Geroscience, 45, p. 2983, DOI: 10.1007/s11357-023-00870-x</label>
          <listPosition>154</listPosition>
          <doi>10.1007/s11357-023-00870-x</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679321</mtid>
          <link>/api/reference/51679321</link>
          <label>155. Kiss 2022: Old blood from heterochronic parabionts accelerates vascular aging in young mice: Transcriptomic signature of pathologic smooth muscle remodeling., Geroscience, 44, p. 953, DOI: 10.1007/s11357-022-00519-1</label>
          <listPosition>155</listPosition>
          <doi>10.1007/s11357-022-00519-1</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679322</mtid>
          <link>/api/reference/51679322</link>
          <label>156. Bakhtiari 2023: Changes in hippocampal volume during a preceding 10-year period do not correlate with cognitive performance and hippocampal blood–brain barrier permeability in cognitively normal late-middle-aged men., Geroscience, 45, p. 1161, DOI: 10.1007/s11357-022-00712-2</label>
          <listPosition>156</listPosition>
          <doi>10.1007/s11357-022-00712-2</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679323</mtid>
          <link>/api/reference/51679323</link>
          <label>157. Montagne 2022: Imaging subtle leaks in the blood-brain barrier in the aging human brain: Potential pitfalls, challenges, and possible solutions., Geroscience, 44, p. 1339, DOI: 10.1007/s11357-022-00571-x</label>
          <listPosition>157</listPosition>
          <doi>10.1007/s11357-022-00571-x</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679324</mtid>
          <link>/api/reference/51679324</link>
          <label>158. Towner 2021: Rapamycin restores brain vasculature, metabolism, and blood-brain barrier in an inflammaging model., Geroscience, 43, p. 563, DOI: 10.1007/s11357-021-00363-9</label>
          <listPosition>158</listPosition>
          <doi>10.1007/s11357-021-00363-9</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679325</mtid>
          <link>/api/reference/51679325</link>
          <label>159. Kerkhofs 2021: Blood-brain barrier leakage at baseline and cognitive decline in cerebral small vessel disease: A 2-year follow-up study., Geroscience, 43, p. 1643, DOI: 10.1007/s11357-021-00399-x</label>
          <listPosition>159</listPosition>
          <doi>10.1007/s11357-021-00399-x</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679326</mtid>
          <link>/api/reference/51679326</link>
          <label>160. Bagi 2022: Association of cerebral microvascular dysfunction and white matter injury in Alzheimer’s disease., Geroscience, 44, p. 1, DOI: 10.1007/s11357-022-00585-5</label>
          <listPosition>160</listPosition>
          <doi>10.1007/s11357-022-00585-5</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679327</mtid>
          <link>/api/reference/51679327</link>
          <label>161. Assar 2022: Early manifestation of aging-related vascular dysfunction in human penile vasculature-A potential explanation for the role of erectile dysfunction as a harbinger of systemic vascular disease., Geroscience, 44, p. 485, DOI: 10.1007/s11357-021-00507-x</label>
          <listPosition>161</listPosition>
          <doi>10.1007/s11357-021-00507-x</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679328</mtid>
          <link>/api/reference/51679328</link>
          <label>162. Moreau 2020: Decline in endothelial function across the menopause transition in healthy women is related to decreased estradiol and increased oxidative stress., Geroscience, 42, p. 1699, DOI: 10.1007/s11357-020-00236-7</label>
          <listPosition>162</listPosition>
          <doi>10.1007/s11357-020-00236-7</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679329</mtid>
          <link>/api/reference/51679329</link>
          <label>163. Kiss 2020: Circulating anti-geronic factors from heterochonic parabionts promote vascular rejuvenation in aged mice: Transcriptional footprint of mitochondrial protection, attenuation of oxidative stress, and rescue of endothelial function by young blood., Geroscience, 42, p. 727, DOI: 10.1007/s11357-020-00180-6</label>
          <listPosition>163</listPosition>
          <doi>10.1007/s11357-020-00180-6</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679330</mtid>
          <link>/api/reference/51679330</link>
          <label>164. Csiszar 2014: Resveratrol Encapsulated in Novel Fusogenic Liposomes Activates Nrf2 and Attenuates Oxidative Stress in Cerebromicrovascular Endothelial Cells From Aged Rats., J. Gerontol. A Biol. Sci. Med. Sci., 70, p. 303, DOI: 10.1093/gerona/glu029</label>
          <listPosition>164</listPosition>
          <doi>10.1093/gerona/glu029</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679331</mtid>
          <link>/api/reference/51679331</link>
          <label>165. Clifford 2021: The effect of dietary phytochemicals on nuclear factor erythroid 2-related factor 2 (Nrf2) activation: A systematic review of human intervention trials., Mol. Biol. Rep., 48, p. 1745, DOI: 10.1007/s11033-020-06041-x</label>
          <listPosition>165</listPosition>
          <doi>10.1007/s11033-020-06041-x</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679332</mtid>
          <link>/api/reference/51679332</link>
          <label>166. Fraga 2019: The effects of polyphenols and other bioactives on human health., Food Funct., 10, p. 514, DOI: 10.1039/C8FO01997E</label>
          <listPosition>166</listPosition>
          <doi>10.1039/C8FO01997E</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679333</mtid>
          <link>/api/reference/51679333</link>
          <label>167. Cassidy 2017: The role of metabolism (and the microbiome) in defining the clinical efficacy of dietary flavonoids., Am. J. Clin. Nutr., 105, p. 10, DOI: 10.3945/ajcn.116.136051</label>
          <listPosition>167</listPosition>
          <doi>10.3945/ajcn.116.136051</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>51679334</mtid>
          <link>/api/reference/51679334</link>
          <label>168. Cassidy 2013: High anthocyanin intake is associated with a reduced risk of myocardial infarction in young and middle-aged women., Circulation, 127, p. 188, DOI: 10.1161/CIRCULATIONAHA.112.122408</label>
          <listPosition>168</listPosition>
          <doi>10.1161/CIRCULATIONAHA.112.122408</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
      </references>
      <link>/api/publication/34773870</link>
      <label>Balasubramanian Priya et al. Accelerated Aging Induced by an Unhealthy High-Fat Diet: Initial Evidence for the Role of Nrf2 Deficiency and Impaired Stress Resilience in Cellular Senescence. (2024) NUTRIENTS 2072-6643 16 7</label><template>&lt;div class=&quot;JournalArticle Publication short-list&quot;&gt; &lt;div class=&quot;authors&quot;&gt; &lt;span class=&quot;author-name&quot; &gt; Balasubramanian, Priya &lt;/span&gt; &lt;span class=&quot;author-type&quot;&gt; &lt;/span&gt; ; &lt;span class=&quot;author-name&quot; mtid=&quot;10071509&quot;&gt; &lt;a href=&quot;/gui2/?type=authors&amp;mode=browse&amp;sel=10071509&quot; target=&quot;_blank&quot;&gt;Kiss, Tamas&lt;/a&gt; &lt;/span&gt; &lt;span class=&quot;author-type&quot;&gt; &lt;/span&gt; ; &lt;span class=&quot;author-name&quot; &gt; Gulej, Rafal &lt;/span&gt; &lt;span class=&quot;author-type&quot;&gt; &lt;/span&gt; ; &lt;span class=&quot;author-name&quot; mtid=&quot;10045003&quot;&gt; &lt;a href=&quot;/gui2/?type=authors&amp;mode=browse&amp;sel=10045003&quot; target=&quot;_blank&quot;&gt;Nyul Toth, Adam&lt;/a&gt; &lt;/span&gt; &lt;span class=&quot;author-type&quot;&gt; &lt;/span&gt; ; &lt;span class=&quot;author-name&quot; mtid=&quot;10074557&quot;&gt; &lt;a href=&quot;/gui2/?type=authors&amp;mode=browse&amp;sel=10074557&quot; target=&quot;_blank&quot;&gt;Tarantini, Stefano&lt;/a&gt; &lt;/span&gt; &lt;span class=&quot;author-type&quot;&gt; &lt;/span&gt; ; &lt;span class=&quot;author-name&quot; &gt; Yabluchanskiy, Andriy &lt;/span&gt; &lt;span class=&quot;author-type&quot;&gt; &lt;/span&gt; ; &lt;span class=&quot;author-name&quot; mtid=&quot;10043602&quot;&gt; &lt;a href=&quot;/gui2/?type=authors&amp;mode=browse&amp;sel=10043602&quot; target=&quot;_blank&quot;&gt;Ungvari, Zoltan ✉&lt;/a&gt; &lt;/span&gt; &lt;span class=&quot;author-type&quot;&gt; &lt;/span&gt; ; &lt;span class=&quot;author-name&quot; mtid=&quot;10071157&quot;&gt; &lt;a href=&quot;/gui2/?type=authors&amp;mode=browse&amp;sel=10071157&quot; target=&quot;_blank&quot;&gt;Csiszar, Anna&lt;/a&gt; &lt;/span&gt; &lt;span class=&quot;author-type&quot;&gt; &lt;/span&gt; &lt;/div &gt;&lt;div class=&quot;title&quot;&gt;&lt;a href=&quot;/gui2/?mode=browse&amp;params=publication;34773870&quot; mtid=&quot;34773870&quot; target=&quot;_blank&quot;&gt;Accelerated Aging Induced by an Unhealthy High-Fat Diet: Initial Evidence for the Role of Nrf2 Deficiency and Impaired Stress Resilience in Cellular Senescence&lt;/a&gt;&lt;/div&gt; &lt;div class=&quot;pub-info&quot;&gt; &lt;span class=&quot;journal-title&quot;&gt;NUTRIENTS&lt;/span&gt; &lt;span class=&quot;journal-volume&quot;&gt;16&lt;/span&gt; : &lt;span class=&quot;journal-issue&quot;&gt;7&lt;/span&gt; &lt;span class=&quot;page&quot;&gt; Paper: 952 , 18 p. &lt;/span&gt; &lt;span class=&quot;year&quot;&gt;(2024)&lt;/span&gt; &lt;/div&gt; &lt;div class=&quot;pub-end&quot;&gt;&lt;div class=&quot;identifier-list&quot;&gt; &lt;span class=&quot;identifiers&quot;&gt; &lt;span class=&quot;id identifier oa_none&quot; title=&quot;none&quot;&gt; &lt;a style=&quot;color:blue&quot; title=&quot;10.3390/nu16070952&quot; target=&quot;_blank&quot; href=&quot;https://doi.org/10.3390/nu16070952&quot;&gt; DOI &lt;/a&gt; &lt;/span&gt; &lt;span class=&quot;id identifier oa_none&quot; title=&quot;none&quot;&gt; &lt;a style=&quot;color:blue&quot; title=&quot;001201035600001&quot; target=&quot;_blank&quot; href=&quot;https://www.webofscience.com/wos/woscc/full-record/001201035600001&quot;&gt; WoS &lt;/a&gt; &lt;/span&gt; &lt;span class=&quot;id identifier oa_none&quot; title=&quot;none&quot;&gt; &lt;a style=&quot;color:blue&quot; title=&quot;85190491451&quot; target=&quot;_blank&quot; href=&quot;http://www.scopus.com/record/display.url?origin=inward&amp;eid=2-s2.0-85190491451&quot;&gt; Scopus &lt;/a&gt; &lt;/span&gt; &lt;span class=&quot;id identifier oa_none&quot; title=&quot;none&quot;&gt; &lt;a style=&quot;color:blue&quot; title=&quot;38612986&quot; target=&quot;_blank&quot; href=&quot;http://www.ncbi.nlm.nih.gov/entrez/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;list_uids=38612986&amp;dopt=Abstract&quot;&gt; PubMed &lt;/a&gt; &lt;/span&gt; &lt;/span&gt; &lt;/div&gt; &lt;div class=&quot;short-pub-prop-list&quot;&gt; &lt;span class=&quot;deleted-record&quot;&gt;Központi kezelésű&lt;/span&gt; &lt;span class=&quot;short-pub-mtid&quot;&gt; Közlemény:34773870 &lt;/span&gt; &lt;span class=&quot;status-holder&quot;&gt;&lt;span class=&quot;status-data status-VALIDATED&quot;&gt; Egyeztetett &lt;/span&gt;&lt;/span&gt; &lt;span class=&quot;pub-core&quot;&gt;Forrás Idéző &lt;/span&gt; &lt;span class=&quot;pub-type&quot;&gt;Folyóiratcikk (Szakcikk ) &lt;/span&gt; &lt;!-- &amp;&amp; !record.category.scientific --&gt; &lt;span class=&quot;pub-category&quot;&gt;Tudományos&lt;/span&gt; &lt;div class=&quot;publication-citation&quot; style=&quot;margin-left: 0.5cm;&quot;&gt; &lt;span title=&quot;Nyilvános idézőközlemények összesen, említések nélkül&quot; class=&quot;citingPub-count&quot;&gt;Nyilvános idéző összesen: 36&lt;/span&gt; | Független: 32 | Függő: 4 | Nem jelölt: 0 | WoS jelölt: 33 | Scopus jelölt:&amp;nbsp;34 | WoS/Scopus jelölt:&amp;nbsp;36 | DOI jelölt:&amp;nbsp;36 &lt;/div&gt; &lt;/div&gt; &lt;/div&gt; &lt;/div&gt;</template><template2>&lt;div class=&quot;JournalArticle Publication long-list&quot;&gt;
&lt;div class=&quot;authors&quot;&gt;
	&lt;img title=&quot;Forrásközlemény&quot; style=&quot;float: left&quot; src=&quot;/frontend/resources/grid/publication-core-icon.png&quot;&gt;
	&lt;img title=&quot;Idézőközlemény&quot; style=&quot;float: left&quot; src=&quot;/frontend/resources/grid/publication-citation-icon.png&quot;&gt;

		&lt;div class=&quot;autype autype0&quot;&gt;				&lt;span class=&quot;author-name&quot; &gt;Balasubramanian Priya
    &lt;/span&gt;
;&amp;nbsp;&amp;nbsp;&amp;nbsp;
							&lt;span class=&quot;author-name&quot; mtid=&quot;10071509&quot;&gt;&lt;a 
																				   href=&quot;/gui2/?type=authors&amp;mode=browse&amp;sel=10071509&quot; target=&quot;_blank&quot;&gt;Kiss Tamas
            (&lt;span class=&quot;authorship-author-name&quot;&gt;Kiss Tamás&lt;/span&gt;
            &lt;span class=&quot;authorAux-mtmt&quot;&gt; bioinformatika&lt;/span&gt;)
			&lt;/a&gt;
    &lt;/span&gt;
&lt;span class=&quot;author-affil&quot;&gt;&lt;span title=&quot;Semmelweis Egyetem&quot;&gt;SE&lt;/span&gt;/&lt;span title=&quot;Általános Orvostudományi Kar&quot;&gt;AOK&lt;/span&gt;/&lt;span title=&quot;Intézet&quot;&gt;I&lt;/span&gt;/&lt;span title=&quot;Transzlációs Medicina Intézet&quot;&gt;TMI&lt;/span&gt;/ELKH-SE Cerebrovaszkuláris és Neurokognitív Betegségek Kutatócsoport; &lt;span title=&quot;Semmelweis Egyetem&quot;&gt;SE&lt;/span&gt;/&lt;span title=&quot;Általános Orvostudományi Kar&quot;&gt;AOK&lt;/span&gt;/&lt;span title=&quot;Klinikum&quot;&gt;K&lt;/span&gt;/Gyermekgyógyászati Klinika&lt;/span&gt;
;&amp;nbsp;&amp;nbsp;&amp;nbsp;
							&lt;span class=&quot;author-name&quot; &gt;Gulej Rafal
    &lt;/span&gt;
;&amp;nbsp;&amp;nbsp;&amp;nbsp;
							&lt;span class=&quot;author-name&quot; mtid=&quot;10045003&quot;&gt;&lt;a 
																				   href=&quot;/gui2/?type=authors&amp;mode=browse&amp;sel=10045003&quot; target=&quot;_blank&quot;&gt;Nyul Toth Adam
            (&lt;span class=&quot;authorship-author-name&quot;&gt;Nyúl-Tóth Ádám&lt;/span&gt;
            &lt;span class=&quot;authorAux-mtmt&quot;&gt; biofizika&lt;/span&gt;)
			&lt;/a&gt;
    &lt;/span&gt;
;&amp;nbsp;&amp;nbsp;&amp;nbsp;
							&lt;span class=&quot;author-name&quot; mtid=&quot;10074557&quot;&gt;&lt;a 
																				   href=&quot;/gui2/?type=authors&amp;mode=browse&amp;sel=10074557&quot; target=&quot;_blank&quot;&gt;Tarantini Stefano
            (&lt;span class=&quot;authorship-author-name&quot;&gt;Tarantini Stefano&lt;/span&gt;
            &lt;span class=&quot;authorAux-mtmt&quot;&gt; népegészségtan, gerontológia, molekuláris bioló...&lt;/span&gt;)
			&lt;/a&gt;
    &lt;/span&gt;
;&amp;nbsp;&amp;nbsp;&amp;nbsp;
							&lt;span class=&quot;author-name&quot; &gt;Yabluchanskiy Andriy
    &lt;/span&gt;
;&amp;nbsp;&amp;nbsp;&amp;nbsp;
							&lt;span class=&quot;author-name&quot; mtid=&quot;10043602&quot;&gt;&lt;a 
																				   href=&quot;/gui2/?type=authors&amp;mode=browse&amp;sel=10043602&quot; target=&quot;_blank&quot;&gt;Ungvari Zoltan ✉
            (&lt;span class=&quot;authorship-author-name&quot;&gt;Ungvári Zoltán István&lt;/span&gt;
            &lt;span class=&quot;authorAux-mtmt&quot;&gt; Orvostudomány, megelőző orvostan, népegészségta...&lt;/span&gt;)
			&lt;/a&gt;
    &lt;/span&gt;
&lt;span class=&quot;author-affil&quot;&gt;&lt;span title=&quot;Semmelweis Egyetem&quot;&gt;SE&lt;/span&gt;/&lt;span title=&quot;Általános Orvostudományi Kar&quot;&gt;AOK&lt;/span&gt;/&lt;span title=&quot;Intézet&quot;&gt;I&lt;/span&gt;/&lt;span title=&quot;Transzlációs Medicina Intézet&quot;&gt;TMI&lt;/span&gt;/ELKH-SE Cerebrovaszkuláris és Neurokognitív Betegségek Kutatócsoport&lt;/span&gt;
;&amp;nbsp;&amp;nbsp;&amp;nbsp;
							&lt;span class=&quot;author-name&quot; mtid=&quot;10071157&quot;&gt;&lt;a 
																				   href=&quot;/gui2/?type=authors&amp;mode=browse&amp;sel=10071157&quot; target=&quot;_blank&quot;&gt;Csiszar Anna
            (&lt;span class=&quot;authorship-author-name&quot;&gt;Csiszar Anna&lt;/span&gt;
            &lt;span class=&quot;authorAux-mtmt&quot;&gt; Orvostudomany&lt;/span&gt;)
			&lt;/a&gt;
    &lt;/span&gt;
&lt;span class=&quot;author-affil&quot;&gt;&lt;span title=&quot;Semmelweis Egyetem&quot;&gt;SE&lt;/span&gt;/&lt;span title=&quot;Általános Orvostudományi Kar&quot;&gt;AOK&lt;/span&gt;/&lt;span title=&quot;Intézet&quot;&gt;I&lt;/span&gt;/&lt;span title=&quot;Transzlációs Medicina Intézet&quot;&gt;TMI&lt;/span&gt;/ELKH-SE Cerebrovaszkuláris és Neurokognitív Betegségek Kutatócsoport&lt;/span&gt;

				    &lt;/div&gt;
&lt;/div&gt;
&lt;div class=&quot;title&quot;&gt;&lt;a href=&quot;/gui2/?mode=browse&amp;params=publication;34773870&quot; target=&quot;_blank&quot;&gt;Accelerated Aging Induced by an Unhealthy High-Fat Diet: Initial Evidence for the Role of Nrf2 Deficiency and Impaired Stress Resilience in Cellular Senescence&lt;/a&gt;&lt;/div&gt;    &lt;div&gt;		&lt;span class=&quot;journal-title&quot;&gt;NUTRIENTS&lt;/span&gt;

        &lt;span class=&quot;journal-issn&quot;&gt;( &lt;a target=&quot;_blank&quot; href=&quot;https://portal.issn.org/resource/ISSN/2072-6643&quot;&gt;2072-6643&lt;/a&gt;)&lt;/span&gt;:
		&lt;span class=&quot;journal-volume&quot;&gt;16&lt;/span&gt; &lt;span class=&quot;journal-issue&quot;&gt;7&lt;/span&gt;
&lt;span class=&quot;page&quot;&gt;
		Paper 952.
	 18 p. 
&lt;/span&gt;		 &lt;span class=&quot;year&quot;&gt;(2024)&lt;/span&gt;  
    &lt;/div&gt;
&lt;div class=&quot;pub-footer&quot;&gt;
    

	&lt;span class=&quot;language&quot; xmlns=&quot;http://www.w3.org/1999/html&quot;&gt;Nyelv:
			Angol
		 |  &lt;/span&gt;

	&lt;span class=&quot;identifiers&quot;&gt;
						&lt;span class=&quot;id identifier oa_none&quot; title=&quot;none&quot;&gt;
							
							&lt;a style=&quot;color:blue&quot; title=&quot;10.3390/nu16070952&quot; target=&quot;_blank&quot; href=&quot;https://doi.org/10.3390/nu16070952&quot;&gt;
									DOI
							&lt;/a&gt;
						&lt;/span&gt;
						&lt;span class=&quot;id identifier oa_none&quot; title=&quot;none&quot;&gt;
							
							&lt;a style=&quot;color:blue&quot; title=&quot;001201035600001&quot; target=&quot;_blank&quot; href=&quot;https://www.webofscience.com/wos/woscc/full-record/001201035600001&quot;&gt;
									WoS
							&lt;/a&gt;
						&lt;/span&gt;
						&lt;span class=&quot;id identifier oa_none&quot; title=&quot;none&quot;&gt;
							
							&lt;a style=&quot;color:blue&quot; title=&quot;85190491451&quot; target=&quot;_blank&quot; href=&quot;http://www.scopus.com/record/display.url?origin=inward&amp;eid=2-s2.0-85190491451&quot;&gt;
									Scopus
							&lt;/a&gt;
						&lt;/span&gt;
						&lt;span class=&quot;id identifier oa_none&quot; title=&quot;none&quot;&gt;
							
							&lt;a style=&quot;color:blue&quot; title=&quot;38612986&quot; target=&quot;_blank&quot; href=&quot;http://www.ncbi.nlm.nih.gov/entrez/query.fcgi?cmd=Retrieve&amp;db=PubMed&amp;list_uids=38612986&amp;dopt=Abstract&quot;&gt;
									PubMed
							&lt;/a&gt;
						&lt;/span&gt;
	&lt;/span&gt;


	&lt;OnlyViewableByAuthor&gt;&lt;div class=&quot;ratings&quot;&gt;
				&lt;div class=&quot;journal-subject&quot;&gt;Folyóirat szakterülete: Scopus - Food Science&amp;nbsp;&amp;nbsp;&amp;nbsp;SJR indikátor:&amp;nbsp;D1&lt;/div&gt;
				&lt;div class=&quot;journal-subject&quot;&gt;Folyóirat szakterülete: Scopus - Nutrition and Dietetics&amp;nbsp;&amp;nbsp;&amp;nbsp;SJR indikátor:&amp;nbsp;D1&lt;/div&gt;
    &lt;/div&gt;&lt;/OnlyViewableByAuthor&gt;


	&lt;div class=&quot;publication-citation&quot; style=&quot;margin-left: 0.5cm;&quot;&gt;
		&lt;span title=&quot;Nyilvános idézőközlemények összesen, említések nélkül&quot; class=&quot;citingPub-count&quot;&gt;Nyilvános idéző összesen: 36&lt;/span&gt;
		| Független: 32
		| Függő: 4
		| Nem jelölt: 0
		| WoS jelölt: 33 
		|  Scopus jelölt:&amp;nbsp;34 
		|  WoS/Scopus jelölt:&amp;nbsp;36 
		|  DOI jelölt:&amp;nbsp;36 
		
	&lt;/div&gt;
    
    
	&lt;div class=&quot;publication-citation&quot;&gt;
		&lt;a target=&quot;_blank&quot; href=&quot;/api/publication?cond=citations.related;eq;34773870&amp;sort=publishedYear,desc&amp;sort=title&quot;&gt;
			Idézett közlemények száma: 23
		&lt;/a&gt;
	&lt;/div&gt;



    &lt;div class=&quot;mtid&quot;&gt;&lt;span class=&quot;long-pub-mtid&quot;&gt;Közlemény: 34773870&lt;/span&gt;
    | &lt;span class=&quot;status-data status-VALIDATED&quot;&gt; 	Egyeztetett
  &lt;/span&gt;
        
	
	
Forrás	 Idéző
	
	
    | &lt;span class=&quot;type-subtype&quot;&gt;Folyóiratcikk
			( Szakcikk
			
			)
		&lt;/span&gt;
      		| &lt;span class=&quot;pub-category&quot;&gt;Tudományos&lt;/span&gt;
	| &lt;span class=&quot;publication-sourceOfData&quot;&gt;kézi felvitel&lt;/span&gt;
&lt;/div&gt;


&lt;div class=&quot;lastModified&quot;&gt;Utolsó módosítás: 2024.12.06. 19:08 Milánkovics Róbert (PTE ÁOK admin 4)
&lt;/div&gt;


        &lt;div class=&quot;lockedBy&quot;&gt;Központi kezelésű 2025.06.05. 01:43  Lévayné Deseő Katalin (MTMT Központi admin)
        &lt;/div&gt;


	&lt;pre class=&quot;comment&quot; style=&quot;margin-top: 0; margin-bottom: 0;&quot;&gt;&lt;u&gt;Megjegyzés&lt;/u&gt;: Funding Agency and Grant Number: American Heart Association
            Funding text: No Statement Available&lt;/pre&gt;
&lt;/div&gt;&lt;/div&gt;</template2>
    </publication>
  </content>
</myciteResult>
