{ "labelLang" : "hun", "responseDate" : "2024-03-29 14:02", "content" : { "otype" : "JournalArticle", "mtid" : 1376344, "status" : "VALIDATED", "published" : true, "comment" : "Funding Agency and Grant Number: OTKAOrszagos Tudomanyos Kutatasi Alapprogramok (OTKA) [T032205, OM 0320/2004, PD75496]; NKFP [1A/007/2004]; Ministry of Health, Social and Family Affairs [454/2003, 006/2009]; ETT-ESKI; HAS\n Funding text: The authors are indebted to Magdolna Toth Peli, Csilla Santa Torok, Kornelia Szorath Galne for excellent technical assistance, to MSc students Andras Berta and Attila Hegedus (ELTE, Budapest) for enthusiastic help. Thanks are due to Peter Orosz and Natalia Polgar for critical reading of the manuscript, and to Sankar Adhya (NIH, Bethesda), Laszlo Sugar (U. Kaposvar), Erno Duda (BRC, Szeged) and Janos Szabad (U. Szeged), Sandor Spisak, Bernadett Balla and Janos Kosa (SOTE, Budapest) for their constant interest. This work was supported by grants OTKA T032205 to L.O., OM 0320/2004 to L.O., NKFP 1A/007/2004 to L.O. and P. L., 454/2003 and 006/2009 from the Ministry of Health, Social and Family Affairs, ETT-ESKI to L.O., OTKA PD75496 to S. S., and by the Janos Bolyai fellowship of the HAS to S. S.\nDepartment of Genetics, Eötvös Loránd University, Pázmány Péter s. 1/c, 1117 Budapest, Hungary \n Institute of Genetics, Agricultural Biotechnology Center, Szent-Györgyi Albert u. 4, 2100 Gödöllö, Hungary \n Department of Fish and Pet Animal Breeding, Faculty of Animal Science, University of Kaposvár, Guba Sándor u. 40, 7400 Kaposvár, Hungary \n Laboratory of Functional Genomics, Biological Research Center, Hungarian Academy of Sciences, P.O. Box 521, 6701 Szeged, Hungary \n 1st Department of Internal Medicine, Semmelweis University, Korányi Sándor u. 2/a, 1083 Budapest, Hungary \n BIOMI Ltd., Szent-Györgyi Albert u. 4, 2100 Gödöllö, Hungary \n Department of Plant Taxonomy and Ecology, Eötvös Loránd University, Pázmány Péter s. 1/c, 1117 Budapest, Hungary \n Apoptosis and Genomics Research Group, Hungarian Academy of Sciences, University of Debrecen, Egyetem tér 1, 4010 Debrecen, Hungary \n Institute of Experimental Medicine, Hungarian Academy of Sciences, Szigony u. 43, 1083 Budapest, Hungary \n Institute of Biochemistry, Biological Research Center, Hungarian Academy of Sciences, Temesvári krt. 62, 6701 Szeged, Hungary \n Cited By :16 \n Export Date: 15 September 2020 \n CODEN: MGGOA \n Correspondence Address: Orosz, L.; Department of Genetics, Eötvös Loránd University, Pázmány Péter s. 1/c, 1117 Budapest, Hungary; email: orosz@abc.hu \n Molecular Sequence Numbers: GENBANK: EF619481, EF619484, EF619493, FN868902, FN868903, FN868904, FN868905, FN868906, FN868907, FN868908, FN868909, FN868910, FN868911, FN868912, FN868913, FN868914, FN868915, FN868916, FN868917, FN868918, FN868919, FN868920, FN868921, FN868922, FN868923, FN868924, FN868925, FN868926; \n Chemicals/CAS: collagen, 9007-34-5; hydroxyproline, 51-35-4, 6912-67-0; osteocalcin, 136461-80-8; osteonectin, 104052-78-0; phosphoethanolamine, 1071-23-4, 29868-05-1; RNA, 63231-63-0; Core Binding Factor Alpha 1 Subunit; DNA, Complementary; RNA, 63231-63-0 \n Funding details: Hellenic Atherosclerosis Society, HAS \n Funding details: PD75496 \n Funding details: Hungarian Scientific Research Fund, OTKA, 006/2009, NKFP 1A/007/2004, T032205, OM 0320/2004, 454/2003 \n Funding text 1: Acknowledgments The authors are indebted to Magdolna Tóth Péli, Csilla Sánta Török, Kornélia Szóráth Gálné for excellent technical assistance, to MSc students András Berta and Attila Heged:s (ELTE, Budapest) for enthusiastic help. Thanks are due to Péter Orosz and Natalia Polgár for critical reading of the manuscript, and to Sankar Ad-hya (NIH, Bethesda), László Sugár (U. Kaposvár), Ernö Duda (BRC, Szeged) and János Szabad (U. Szeged), Sándor Spisák, Bernadett Balla and János Kósa (SOTE, Budapest) for their constant interest. This work was supported by grants OTKA T032205 to L.O., OM 0320/2004 to L.O., NKFP 1A/007/2004 to L.O. and P.L., 454/2003 and 006/2009 from the Ministry of Health, Social and Family AVairs, ETT-ESKI to L.O., OTKA PD75496 to S.S., and by the János Bolyai fellowship of the HAS to S.S.\nDepartment of Genetics, Eötvös Loránd University, Pázmány Péter s. 1/c, 1117 Budapest, Hungary \n Institute of Genetics, Agricultural Biotechnology Center, Szent-Györgyi Albert u. 4, 2100 Gödöllö, Hungary \n Department of Fish and Pet Animal Breeding, Faculty of Animal Science, University of Kaposvár, Guba Sándor u. 40, 7400 Kaposvár, Hungary \n Laboratory of Functional Genomics, Biological Research Center, Hungarian Academy of Sciences, P.O. Box 521, 6701 Szeged, Hungary \n 1st Department of Internal Medicine, Semmelweis University, Korányi Sándor u. 2/a, 1083 Budapest, Hungary \n BIOMI Ltd., Szent-Györgyi Albert u. 4, 2100 Gödöllö, Hungary \n Department of Plant Taxonomy and Ecology, Eötvös Loránd University, Pázmány Péter s. 1/c, 1117 Budapest, Hungary \n Apoptosis and Genomics Research Group, Hungarian Academy of Sciences, University of Debrecen, Egyetem tér 1, 4010 Debrecen, Hungary \n Institute of Experimental Medicine, Hungarian Academy of Sciences, Szigony u. 43, 1083 Budapest, Hungary \n Institute of Biochemistry, Biological Research Center, Hungarian Academy of Sciences, Temesvári krt. 62, 6701 Szeged, Hungary \n Cited By :20 \n Export Date: 13 January 2021 \n CODEN: MGGOA \n Correspondence Address: Orosz, L.; Department of Genetics, Eötvös Loránd University, Pázmány Péter s. 1/c, 1117 Budapest, Hungary; email: orosz@abc.hu\nDepartment of Genetics, Eötvös Loránd University, Pázmány Péter s. 1/c, 1117 Budapest, Hungary \n Institute of Genetics, Agricultural Biotechnology Center, Szent-Györgyi Albert u. 4, 2100 Gödöllö, Hungary \n Department of Fish and Pet Animal Breeding, Faculty of Animal Science, University of Kaposvár, Guba Sándor u. 40, 7400 Kaposvár, Hungary \n Laboratory of Functional Genomics, Biological Research Center, Hungarian Academy of Sciences, P.O. 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Deposition of the minerals in the cartilage preceding ossification is a specific feature of the developing antler. We have cloned 28 genes which are upregulated in the cartilaginous section (called mineralized cartilage) of the developing (\"velvet\") antler of red deer stags, compared to their levels in the fetal cartilage. Fifteen of these genes were further characterized by their expression pattern along the tissue zones (i.e., antler mesenchyme, precartilage, cartilage, bone), and by in situ hybridization of the gene activities at the cellular level. Expression dynamics of genes col1A1, col1A2, col3A1, ibsp, mgp, sparc, runx2, and osteocalcin were monitored and compared in the ossified part of the velvet antler and in the skeleton (in ribs and vertebrae). Expression levels of these genes in the ossified part of the velvet antler exceeded the skeletal levels 10-30-fold or more. Gene expression and comparative sequence analyses of cDNAs and the cognate 5′ cis-regulatory regions in deer, cattle, and human suggested that the genes runx2 and osx have a master regulatory role. GC-MS metabolite analyses of glucose, phosphate, ethanolamine-phosphate, and hydroxyproline utilizations confirmed the high activity of mineralization genes in governing the flow of the minerals from the skeleton to the antler bone. Gene expression patterns and quantitative metabolite data for the robust bone development in the antler are discussed in an integrated manner. 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Springer, Hamburg", "listPosition" : 10, "published" : false, "snippet" : true }, { "otype" : "Reference", "mtid" : 1170733, "link" : "/api/reference/1170733", "label" : "11. \\n Chapman, D., Larkmead, Mills, B., Bury, S., Antler-bone of contention (1975) Mammal Rev, 5, p. 4", "listPosition" : 11, "published" : false, "snippet" : true }, { "otype" : "Reference", "mtid" : 1170734, "link" : "/api/reference/1170734", "label" : "12. \\n Faucheux, C., Price, J.S., Parathyroid hormone-related peptide may play a role in deer antler regeneration (1999) Calcium Metabolism: Comparative Endocrinology, pp. 131-138. , Danks J, Dacke C Flik G, Gay C (ed), BioScientifica Ltd, Bristol", "listPosition" : 12, "published" : false, "snippet" : true }, { "otype" : "Reference", "mtid" : 1170735, "link" : "/api/reference/1170735", "label" : "13. \\n Faucheux, C., Horton, M.A., Price, J.S., Nuclear localization of type i parathyroid hormone/parathyroid hormone-related protein receptors in deer antler osteoclasts: Evidence for parathyroid hormone-related protein and receptor activator of NF-kappaB-depen-dent effects on osteoclast formation in regenerating mammalian bone (2002) J Bone Miner Res, 17, pp. 455-464", "listPosition" : 13, "published" : false, "snippet" : true }, { "otype" : "Reference", "mtid" : 1170736, "link" : "/api/reference/1170736", "label" : "14. \\n Feng, J.Q., Chen, D., Esparza, J., Harris, M.A., Mundy, G.R., Harris, S.E., Deer antler tissue contains two types of bone morphogenetic protein 4 mRNA transcripts (1995) Biochim Biophys Acta, 1263, pp. 163-168", "listPosition" : 14, "published" : false, "snippet" : true }, { "otype" : "Reference", "mtid" : 1170737, "link" : "/api/reference/1170737", "label" : "15. \\n Feng, J.Q., Chen, D., Ghosh-Choudhury, N., Esparza, J., Mundy, G.R., Harris, S.E., Bone morphogenetic protein 2 transcripts in rapidly developing deer antler tissue contain an extended 5' non-coding region arising from a distal promoter (1997) Biochim 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Gray, C., Hukkanen, M., Konttinen, Y.T., Terenghi, G., Arnett, T.R., Rapid neural growth: Calcitonin gene-related peptide and substance P-containing nerves attain exceptional growth rates in regenerating deer antler (1992) Neuroscience, 50, pp. 953-963", "listPosition" : 18, "published" : false, "snippet" : true }, { "otype" : "Reference", "mtid" : 1170741, "link" : "/api/reference/1170741", "label" : "19. \\n Gyurján, J.-I., Molnár, A., Borsy, A., Stéger, V., Hackler, J.-L., Zomborszky, Z., Papp, P., Orosz, L., Gene expression dynamics in deer antler: Mesenchymal diferentiation toward chondrogenesis (2007) Mol Genet Genomics, 277, pp. 221-235", "listPosition" : 19, "published" : false, "snippet" : true }, { "otype" : "Reference", "mtid" : 1170742, "link" : "/api/reference/1170742", "label" : "20. \\n Hock, J., Centrella, M., Canalis, E., Insulin-like growth factor i has independent efects on bone matrix formation and cell replication (1988) Endocrinology, 122, pp. 254-260", "listPosition" : 20, "published" : false, "snippet" : true }, { "otype" : "Reference", "mtid" : 1170743, "link" : "/api/reference/1170743", "label" : "21. \\n Jin, H., Van'T Hof, R., Albagha, O., Ralston, S., Promoter and intron 1 polymorphisms of COL1A1 interact to regulate transcription and susceptibility to osteoporosis (2009) Hum Mol Genet, 18 (15), pp. 2729-2738", "listPosition" : 21, "published" : false, "snippet" : true }, { "otype" : "Reference", "mtid" : 1170744, "link" : "/api/reference/1170744", "label" : "22. \\n Kohen Jr., M.M., Perspectives on RUNX genes: An update (2009) Am J Med Genet A, 149 A (12), pp. 2629-2646", "listPosition" : 22, "published" : false, "snippet" : true }, { "otype" : "Reference", "mtid" : 1170745, "link" : "/api/reference/1170745", "label" : "23. \\n Komori, T., Regulation of bone development, extracellular matrix protein genes by RUNX2 (2010) Cell Tissue Res, 9 (1), pp. 189-195", "listPosition" : 23, "published" : false, "snippet" : true }, { "otype" : "Reference", "mtid" : 1170746, "link" : "/api/reference/1170746", "label" : "24. \\n Korpos, É., Molnár, A., Papp, P., Kiss, I., Orosz, L., Deák, F., Expression pattern of matrilins and other extracellular matrix proteins characterize distinct stages of cell diferentiation during antler development (2005) Matrix Biol, 24, pp. 124-135", "listPosition" : 24, "published" : false, "snippet" : true }, { "otype" : "Reference", "mtid" : 1170747, "link" : "/api/reference/1170747", "label" : "25. \\n Lee, N.K., Sowa, H., Hinoi, E., Ferron, M., Ahn, J.D., Confavreux, C., Dacquin, R., Karsenty, G., Endocrine regulation of energy metabolism by the skeleton (2007) Cell, 130 (3), pp. 456-469", "listPosition" : 25, "published" : false, "snippet" : true }, { "otype" : "Reference", "mtid" : 1170748, "link" : "/api/reference/1170748", "label" : "26. \\n Li, C., Suttie, J.M., Deer antlerogenic periosteum: A piece of post-natally retained embryonic tissue? 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(2005) J Anat, 207, pp. 603-618", "listPosition" : 37, "published" : false, "snippet" : true }, { "otype" : "Reference", "mtid" : 1170760, "link" : "/api/reference/1170760", "label" : "38. \\n Puskás, L., Hackler Jr., L., Kovács, G., Kupihár, Z., Zvara, A., Micsik, T., Van Hummelen, P., Recovery of cyanine-dye nucleotide triphos-phates (2002) Anal Biochem, 305 (2), pp. 279-281", "listPosition" : 38, "published" : false, "snippet" : true }, { "otype" : "Reference", "mtid" : 1170761, "link" : "/api/reference/1170761", "label" : "39. \\n Rucklidge, G.J., Milne, G., Bos, K.J., Farquharson, C., Robins, S.P., Deer antler does not represent a typical endochondral growth system: Immunoidentiication of collagen type X but little collagen type II in growing antler tissue (1997) Comp Biochem Physiol B Bio-chem Mol Biol, 118, pp. 303-308", "listPosition" : 39, "published" : false, "snippet" : true }, { "otype" : "Reference", "mtid" : 1170762, "link" : "/api/reference/1170762", "label" : "40. \\n Sambrook, J., Fritsch, E.F., Maniatis, T., Methods of screening, a laboratory manual. 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