Microglia modulate blood flow, neurovascular coupling, and hypoperfusion via purinergic actions.

Császár, Eszter [Császár, Eszter (idegtudományok), author] Laboratory of Neuroimmunology; School of PhD Studies (SU); Lénárt, Nikolett* [Lénárt, Nikolett (neurobiológia), author] Laboratory of Neuroimmunology; Cserép, Csaba [Cserép, Csaba (Idegtudomány, Neu...), author] Laboratory of Neuroimmunology; Környei, Zsuzsanna [Környei, Zsuzsanna (Neuroimmunológia;...), author] Laboratory of Neuroimmunology; Fekete, Rebeka [Fekete, Rebeka (idegtudomány), author] Laboratory of Neuroimmunology; Pósfai, Balázs [Pósfai, Balázs (Idegtudomány), author] Laboratory of Neuroimmunology; School of PhD Studies (SU); Balázsfi, Diána [Balázsfi, Diána (Idegtudomány), author] Laboratory of System-Neurobiology; Hangya, Balázs [Hangya, Balázs (Neurobiológia), author] Laboratory of System-Neurobiology; Schwarcz, Anett D [Schwarcz, Dóra Anett (Neuroimmunológia), author] Laboratory of Neuroimmunology; Szabadits, Eszter [Cserépné Szabadits, Eszter (Idegtudomány), author] Laboratory of Neuroimmunology; Szöllősi, Dávid [Szöllősi, Dávid (biofizika), author] Departmnet of Biophysics and Radiation Biology (SU / FM / I); Szigeti, Krisztián [Szigeti, Krisztián (Biofizika), author] Departmnet of Biophysics and Radiation Biology (SU / FM / I); Máthé, Domokos [Máthé, Domokos (Molekuláris képal...), author]; West, Brian L; Sviatkó, Katalin [Tóthné Sviatkó, Katalin (idegtudományok, r...), author]; Brás, Ana Rita [Brás, Ana Rita (Neurobiológia, ne...), author] Laboratory of Neuroimmunology; School of PhD Studies (SU); Mariani, Jean-Charles; Kliewer, Andrea; Lenkei, Zsolt [Lenkei, Zsolt (Idegtudomány), author]; Hricisák, László [Hricisák, László (Humán élettan), author] Transzlációs Medicina Intézet (SU / FM / I); Benyó, Zoltán [Benyó, Zoltán (Élettan és kóréle...), author] Transzlációs Medicina Intézet (SU / FM / I); Baranyi, Mária [Baranyi, Mária (Molekuláris farma...), author] Laboratory of Molecular Pharmacology; Sperlágh, Beáta [Sperlágh, Beáta (Neurofarmakológia), author] Laboratory of Molecular Pharmacology; Menyhárt, Ákos [Menyhárt, Ákos (Neurobiológia), author] Department of Medical Physics and Informatics (SZTE / ASZMS); Farkas, Eszter [Farkas, Eszter (Neurobiológia), author] Department of Cell Biology and Molecular Medicine (SZTE / ASZMS); Department of Cell Biology and Molecular Medicine (SZTE / TTIK / BI); Dénes, Ádám ✉ [Dénes, Ádám (Neurobiológia, ne...), author] Laboratory of Neuroimmunology

English Article (Journal Article) Scientific
Published: JOURNAL OF EXPERIMENTAL MEDICINE 0022-1007 1540-9538 219 (3) Paper: e20211071 , 33 p. 2022
  • SJR Scopus - Immunology: D1
Identifiers
Fundings:
  • (ERC-CoG 724994)
  • (ERC-StG 715043)
  • (LP2016-4/2016) Funder: MTA
  • (KTIA_13_NAP-A-I/2)
  • MTA, NKFIH KH(NKFIH KH125294)
  • H2020(2018-813294-ENTRAIN)
  • (HEALTH-F2-2011-278850)
  • (HEALTH-30531)
  • (739593) Funder: Horizon 2020
  • (János Bolyai Research Scholarship)
  • (UNKP-20-5)
  • Innovációs és Technológiai Minisztérium(ÚNKP-20-3-II)
  • (ÚNKP-21-5) Funder: NRDIO
  • (TKP-BIO- Imaging-2020-4.1.1-TKP2020)
Microglia, the main immunocompetent cells of the brain, regulate neuronal function, but their contribution to cerebral blood flow (CBF) regulation has remained elusive. Here, we identify microglia as important modulators of CBF both under physiological conditions and during hypoperfusion. Microglia establish direct, dynamic purinergic contacts with cells in the neurovascular unit that shape CBF in both mice and humans. Surprisingly, the absence of microglia or blockade of microglial P2Y12 receptor (P2Y12R) substantially impairs neurovascular coupling in mice, which is reiterated by chemogenetically induced microglial dysfunction associated with impaired ATP sensitivity. Hypercapnia induces rapid microglial calcium changes, P2Y12R-mediated formation of perivascular phylopodia, and microglial adenosine production, while depletion of microglia reduces brain pH and impairs hypercapnia-induced vasodilation. Microglial actions modulate vascular cyclic GMP levels but are partially independent of nitric oxide. Finally, microglial dysfunction markedly impairs P2Y12R-mediated cerebrovascular adaptation to common carotid artery occlusion resulting in hypoperfusion. Thus, our data reveal a previously unrecognized role for microglia in CBF regulation, with broad implications for common neurological diseases.
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2026-01-14 18:57