Clearance of senescent glial cells prevents tau-dependent pathology and cognitive decline

高磷酸化 小胶质细胞 神经科学 认知功能衰退 衰老 海马结构 生物 胶质增生 细胞生物学 细胞内 细胞外 转基因小鼠 τ蛋白 转基因 阿尔茨海默病 痴呆 病理 疾病 医学 炎症 免疫学 磷酸化 遗传学 基因
作者
Tyler J. Bussian,Asef Aziz,Charlton F. Meyer,Barbara L. Swenson,Jan M. van Deursen,Darren J. Baker
出处
期刊:Nature [Nature Portfolio]
卷期号:562 (7728): 578-582 被引量:1222
标识
DOI:10.1038/s41586-018-0543-y
摘要

Cellular senescence, which is characterized by an irreversible cell-cycle arrest1 accompanied by a distinctive secretory phenotype2, can be induced through various intracellular and extracellular factors. Senescent cells that express the cell cycle inhibitory protein p16INK4A have been found to actively drive naturally occurring age-related tissue deterioration3,4 and contribute to several diseases associated with ageing, including atherosclerosis5 and osteoarthritis6. Various markers of senescence have been observed in patients with neurodegenerative diseases7–9; however, a role for senescent cells in the aetiology of these pathologies is unknown. Here we show a causal link between the accumulation of senescent cells and cognition-associated neuronal loss. We found that the MAPTP301SPS19 mouse model of tau-dependent neurodegenerative disease10 accumulates p16INK4A-positive senescent astrocytes and microglia. Clearance of these cells as they arise using INK-ATTAC transgenic mice prevents gliosis, hyperphosphorylation of both soluble and insoluble tau leading to neurofibrillary tangle deposition, and degeneration of cortical and hippocampal neurons, thus preserving cognitive function. Pharmacological intervention with a first-generation senolytic modulates tau aggregation. Collectively, these results show that senescent cells have a role in the initiation and progression of tau-mediated disease, and suggest that targeting senescent cells may provide a therapeutic avenue for the treatment of these pathologies. In a mouse model of tau-dependent neurodegenerative disease, the clearance of senescent glial cells prevents the degeneration of cortical and hippocampal neurons and preserves cognitive function.
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