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Live fast die fast principle in a single cell of fission yeast

机译:在裂变酵母的单个细胞中快速生存快速死亡

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摘要

Growth and death are both fundamental macroscopic properties for all living matters, and thus cell division and mortality rates are good parameters for characterizing cellular physiology in a given environment. While population growth rates in various conditions have been reported in literature, death rate is rarely measured, especially in favorable culture conditions where cells grow exponentially. In our recent study (Nakaoka and Wakamoto, 2017), we developed a microfluidics-based platform to track multiple single cell lineages until death. The system enabled us to monitor both cell growth and death in controlled steady environments, and we confirmed the absence of replicative aging in fission yeast old-pole cell lineages by showing remarkable constancy both in cell division and mortality rates. Furthermore, we revealed a growth-death trade-off relation in non-stressed conditions. The phenomenological law that constrains macroscopic physiological parameters could provide a new quantitative insight into possible balanced-growth states in various environments.
机译:生长和死亡都是所有生物的基本宏观特性,因此细胞分裂和死亡率是表征给定环境中细胞生理的良好参数。尽管文献报道了各种条件下的人口增长率,但很少测量死亡率,尤其是在细胞呈指数增长的有利培养条件下。在我们最近的研究中(Nakaoka和Wakamoto,2017),我们开发了一种基于微流体的平台来跟踪多个单细胞谱系直到死亡。该系统使我们能够在受控的稳定环境中监视细胞的生长和死亡,并且通过在细胞分裂和死亡率方面显示出显着的恒定性,我们确认了裂变酵母老极细胞谱系中没有复制性衰老。此外,我们揭示了在非压力条件下的增长与死亡之间的权衡关系。约束宏观生理参数的现象学规律可以为各种环境中可能的平衡生长状态提供新的定量洞察力。

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