...
首页> 外文期刊>Frontiers in Genetics >Communications between Mitochondria, the Nucleus, Vacuoles, Peroxisomes, the Endoplasmic Reticulum, the Plasma Membrane, Lipid Droplets, and the Cytosol during Yeast Chronological Aging
【24h】

Communications between Mitochondria, the Nucleus, Vacuoles, Peroxisomes, the Endoplasmic Reticulum, the Plasma Membrane, Lipid Droplets, and the Cytosol during Yeast Chronological Aging

机译:酵母年代老化过程中线粒体,核,液泡,过氧化物酶体,内质网,质膜,脂质液滴和细胞溶胶之间的通讯

获取原文
           

摘要

Studies employing the budding yeast Saccharomyces cerevisiae as a model organism have provided deep insights into molecular mechanisms of cellular and organismal aging in multicellular eukaryotes and have demonstrated that the main features of biological aging are evolutionarily conserved. Aging in S. cerevisiae is studied by measuring replicative or chronological lifespan. Yeast replicative aging is likely to model aging of mitotically competent human cell types, while yeast chronological aging is believed to mimic aging of post-mitotic human cell types. Emergent evidence implies that various organelle-organelle and organelle-cytosol communications play essential roles in chronological aging of S. cerevisiae. The molecular mechanisms underlying the vital roles of intercompartmental communications in yeast chronological aging have begun to emerge. The scope of this review is to critically analyze recent progress in understanding such mechanisms. Our analysis suggests a model for how temporally and spatially coordinated movements of certain metabolites between various cellular compartments impact yeast chronological aging. In our model, diverse changes in these key metabolites are restricted to critical longevity-defining periods of chronological lifespan. In each of these periods, a limited set of proteins responds to such changes of the metabolites by altering the rate and efficiency of a certain cellular process essential for longevity regulation. Spatiotemporal dynamics of alterations in these longevity-defining cellular processes orchestrates the development and maintenance of a pro- or anti-aging cellular pattern.
机译:以酿酒酵母酿酒酵母为模型生物的研究为多细胞真核生物中细胞和生物衰老的分子机制提供了深刻的见解,并证明了生物衰老的主要特征在进化上是保守的。通过测量复制或按时间顺序的寿命来研究酿酒酵母的衰老。酵母复制性衰老很可能模拟有丝分裂能力的人类细胞类型的衰老,而酵母按时间顺序的衰老被认为可以模拟有丝分裂后人类细胞类型的衰老。新兴证据表明,各种细胞器-细胞器和细胞器-细胞溶胶的通讯在酿酒酵母的时间老化中起重要作用。区室间通信在酵母按时间顺序老化中的重要作用的分子机制已经开始出现。这篇综述的范围是批判性地分析在了解这种机制方面的最新进展。我们的分析提出了一个模型,用于确定某些代谢物在不同细胞区之间的时空协调运动如何影响酵母的时间老化。在我们的模型中,这些关键代谢物的多种变化仅限于按时间顺序排列的关键寿命。在这些时期的每一个时期,一组有限的蛋白质会通过改变某种对长寿调节至关重要的细胞过程的速率和效率来响应代谢物的这种变化。这些决定寿命的细胞过程中变化的时空动态协调了衰老或抗衰老细胞模式的发展和维持。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号