Senolytic therapy alleviates physiological human brain aging and COVID-19 neuropathology
Сенолитическая терапия облегчает физиологическое старение человеческого мозга и нейропатологию при COVID-19
2023-11-13
SCID: 54.1/7xjn8dkr
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COVID-19 brain agingSARS-CoV-2 neuropathologycellular senescencehuman brain organoidssenolytic therapy
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Abstract (AI)
Aging is a major risk factor for neurodegenerative diseases, and coronavirus disease 2019 (COVID-19) is linked to severe neurological manifestations. Senescent cells contribute to brain aging, but the impact of virus-induced senescence on neuropathologies is unknown. Here we show that senescent cells accumulate in aged human brain organoids and that senolytics reduce age-related inflammation and rejuvenate transcriptomic aging clocks. In postmortem brains of patients with severe COVID-19 we observed increased senescent cell accumulation compared with age-matched controls. Exposure of human brain organoids to severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2) induced cellular senescence, and transcriptomic analysis revealed a unique SARS-CoV-2 inflammatory signature. Senolytic treatment of infected brain organoids blocked viral replication and prevented senescence in distinct neuronal populations. In human-ACE2-overexpressing mice, senolytics improved COVID-19 clinical outcomes, promoted dopaminergic neuron survival and alleviated viral and proinflammatory gene expression. Collectively our results demonstrate an important role for cellular senescence in driving brain aging and SARS-CoV-2-induced neuropathology, and a therapeutic benefit of senolytic treatments.
Key Findings
1
In human-ACE2-overexpressing mice, senolytics improve COVID-19 outcomes, preserve dopaminergic neurons, and reduce viral and proinflammatory gene expression.
2
Postmortem brains from patients with severe COVID-19 contain more senescent cells than age-matched controls.
3
SARS-CoV-2 induces cellular senescence and a distinct inflammatory transcriptomic signature in human brain organoids.
4
Senescent cells accumulate in aged human brain organoids, while senolytics reduce age-related inflammation and rejuvenate transcriptomic aging clocks.
5
Senolytics block SARS-CoV-2 replication and prevent senescence in distinct neuronal populations within infected brain organoids.
Research Object
Human brain aging and SARS-CoV-2-induced neuropathology, modeled in human brain organoids, postmortem human brains, and human-ACE2-overexpressing mice
Research Subject
The role of cellular senescence in brain aging and SARS-CoV-2 neuropathology, and the therapeutic effects of senolytic treatment on inflammation, viral replication, neuronal survival, and clinical outcomes
Publication Details
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2023-11-13
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