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对出芽酵母母细胞与子细胞之间预先存在的蛋白质进行不对称遗传的蛋白质组学分析。

Proteomics analysis for asymmetric inheritance of preexisting proteins between mother and daughter cells in budding yeast.

作者信息

Okada Mitsuhiro, Kusunoki Shunta, Ishibashi Yuko, Kito Keiji

机构信息

Department of Life Sciences, School of Agriculture, Meiji University, Kawasaki, 214-8571, Japan.

出版信息

Genes Cells. 2017 Jun;22(6):591-601. doi: 10.1111/gtc.12497. Epub 2017 May 15.

DOI:10.1111/gtc.12497
PMID:28503907
Abstract

In budding yeast, a mother cell can produce a finite number of daughter cells over its life. The accumulation of a variety of types of damaged components has an impact on the aging process. Asymmetrical inheritance during cell division causes these aberrant intracellular constituents to be retained in mother cells and prevents them from segregating to daughter cells. However, the understanding of asymmetrical inheritance of individual proteins that are damaged or old age, and their relevance to the aging process, has been limited. The aim of this study is to propose a proteomics strategy for asymmetrical inheritance of preexisting proteins between mother and daughter cells. During synchronous culture for one generation, newly synthesized proteins were labeled with stable isotope amino acids to discriminate preexisting proteins originally expressed in mother cells, followed by separation of mother and daughter cells using a conventional method based on biotin labeling. Isotope incorporation ratios for individual proteins were quantified using mass spectrometry. We successfully identified 21 proteins whose preexisting versions were asymmetrically inherited in mother cells, including plasma membrane transporter involved in the aging process and organelle-anchoring proteins related to the stress response to misfolded proteins. Thus, our approach would be useful for making catalog of asymmetrically inherited proteins.

摘要

在出芽酵母中,母细胞在其生命周期内能够产生有限数量的子细胞。多种类型受损成分的积累会对衰老过程产生影响。细胞分裂过程中的不对称遗传会使这些异常的细胞内成分保留在母细胞中,并阻止它们分离到子细胞中。然而,对于受损或老化的单个蛋白质的不对称遗传及其与衰老过程的相关性的理解一直有限。本研究的目的是提出一种蛋白质组学策略,用于研究母细胞和子细胞之间原有蛋白质的不对称遗传。在同步培养一代的过程中,用稳定同位素氨基酸标记新合成的蛋白质,以区分最初在母细胞中表达的原有蛋白质,然后使用基于生物素标记的传统方法分离母细胞和子细胞。使用质谱法定量单个蛋白质的同位素掺入率。我们成功鉴定出21种原有形式在母细胞中不对称遗传的蛋白质,包括参与衰老过程的质膜转运蛋白以及与对错误折叠蛋白质的应激反应相关的细胞器锚定蛋白。因此,我们的方法将有助于编制不对称遗传蛋白质的目录。

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