Genome instability is a hallmark of aging, with the highly repetitive ribosomal DNA (rDNA) within the nucleolus being particularly prone to genome instability. Nucleolar enlargement accompanies aging in organisms ranging from yeast to mammals, and treatment with many antiaging interventions results in small nucleoli. Here, we report that an engineered system to reduce nucleolar size robustly extends budding yeast replicative lifespan in a manner independent of protein synthesis rate or rDNA silencing. Instead, when nucleoli expand beyond a size threshold, their biophysical properties change, allowing entry of proteins normally excluded from the nucleolus, including the homologous recombinational repair protein Rad52. This triggers rDNA instability due to aberrant recombination, catastrophic genome instability and imminent death. These results establish that nucleolar expansion is sufficient to drive aging. Moreover, nucleolar expansion beyond a specific size threshold is a mortality timer, as the accompanying disruption of the nucleolar condensate boundary results in catastrophic genome instability that ends replicative lifespan.
A mortality timer based on nucleolar size triggers nucleolar integrity loss and catastrophic genomic instability.
基于核仁大小的死亡计时器会引发核仁完整性丧失和灾难性的基因组不稳定性
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作者:Gutierrez J Ignacio, Tyler Jessica K
| 期刊: | Nature Aging | 影响因子: | 19.400 |
| 时间: | 2024 | 起止号: | 2024 Dec;4(12):1782-1793 |
| doi: | 10.1038/s43587-024-00754-5 | 研究方向: | 其它 |
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