Bolyai+ Felsőoktatási Fiatal Oktatói, Kutatói Ösztöndíj(ÚNKP-23-5) Támogató: Bolyai+
(SNN 132999) Támogató: NKFIH
A mintázatfelismerő Nod-like receptorok, mint új, potenciális szabályozók a vázizom
regeneráció m...(K131844) Támogató: OTKA
(ÚNKP-23-4-I)
(ÚNKP-22-3)
(K147109)
Hungarian Brain Research Program(NAP2022-I-1/2022)
(KDP-12-10/PALY-2022)
Szakterületek:
Orvos- és egészségtudomány
COVID-19 is associated with diverse neurological abnormalities, but the underlying
mechanisms are unclear. We hypothesized that microglia, the resident immune cells
of the brain, are centrally involved in this process. To study this, we developed
an autopsy platform allowing the integration of molecular anatomy, protein and mRNA
datasets in postmortem mirror blocks of brain and peripheral organ samples from cases
of COVID-19. We observed focal loss of microglial P2Y12R, CX3CR1–CX3CL1 axis deficits
and metabolic failure at sites of virus-associated vascular inflammation in severely
affected medullary autonomic nuclei and other brain areas. Microglial dysfunction
is linked to mitochondrial injury at sites of excessive synapse and myelin phagocytosis
and loss of glutamatergic terminals, in line with proteomic changes of synapse assembly,
metabolism and neuronal injury. Furthermore, regionally heterogeneous microglial changes
are associated with viral load and central and systemic inflammation related to interleukin
(IL)-1 or IL-6 via virus-sensing pattern recognition receptors and inflammasomes.
Thus, SARS-CoV-2-induced inflammation might lead to a primarily gliovascular failure
in the brain, which could be a common contributor to diverse COVID-19-related neuropathologies.