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Two routes to senescence revealed by real-time analysis of telomerase-negative single lineages

机译:实时分析端粒酶阴性单谱系揭示了两条衰老途径

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In eukaryotes, telomeres cap chromosome ends to maintain genomic stability. Failure to maintain telomeres leads to their progressive erosion and eventually triggers replicative senescence, a pathway that protects against unrestricted cell proliferation. However, the mechanisms underlying the variability and dynamics of this pathway are still elusive. Here we use a microfluidics-based live-cell imaging assay to investigate replicative senescence in individual Saccharomyces cerevisiae cell lineages following telomerase inactivation. We characterize two mechanistically distinct routes to senescence. Most lineages undergo an abrupt and irreversible switch from a replicative to an arrested state, consistent with telomeres reaching a critically short length. In contrast, other lineages experience frequent and stochastic reversible arrests, consistent with the repair of accidental telomere damage by Pol32, a subunit of polymerase delta required for break-induced replication and for post-senescence survival. Thus, at the single-cell level, replicative senescence comprises both deterministic cell fates and chaotic cell division dynamics.
机译:在真核生物中,端粒帽染色体末端以维持基因组稳定性。不能维持端粒会导致其逐渐侵蚀,并最终触发复制性衰老,这是防止不受限制的细胞增殖的途径。但是,该途径的可变性和动态性背后的机制仍然难以捉摸。在这里,我们使用基于微流体的活细胞成像分析法来研究端粒酶失活后的酿酒酵母细胞谱系中的复制衰老。我们表征了两种机制上不同的衰老途径。大多数谱系经历了从复制状态到停滞状态的突然且不可逆转的转变,这与端粒达到临界短长度一致。相比之下,其他谱系则经历频繁且随机的可逆逮捕,这与Pol32修复端粒意外损坏有关,Pol32是断裂诱导复制和衰老后存活所必需的聚合酶δ亚基。因此,在单细胞水平上,复制衰老既包括确定性细胞命运,也包括混沌细胞分裂动力学。

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