Wat1/Pop3在调节裂变酵母TORC1信号通路中的关键作用

IF 2.4 3区 生物学 Q3 GENETICS & HEREDITY
Lalita Panigrahi , Simmi Anjum , Shakil Ahmed
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引用次数: 2

摘要

雷帕霉素(TOR)是调节细胞生长和增殖的主要途径,其靶标从酵母到人类都是保守的。裂变酵母含有两种tor复合物,TORC1对细胞生长至关重要,而TORC2在应激条件下被激活。Pop3/Wat1,一种哺乳动物Lst8同源物,是两种TOR复合物的重要组成部分,并与氧化应激反应途径有关。在本研究中,遗传相互作用分析揭示了wat1与tor2-287突变细胞的合成致死相互作用。共免疫沉淀分析显示,Wat1与TORC1组分Tor2、Mip1和Tco89相互作用,而Wat1-17突变蛋白未能与这些蛋白质相互作用。在不存在Wat1的情况下,细胞停滞在G1期,在非允许温度下细胞大小减小,使人想起tor2-287突变表型。类似地,Wat1的失活导致TORC1介导的Psk1和Rps602的磷酸化失败,导致氨基酸渗透酶的失调和DNA结合转录因子Gaf1的离域。总之,我们假设Wat1/Pop3是执行TORC1功能所必需的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Critical role of Wat1/Pop3 in regulating the TORC1 signalling pathway in fission yeast S. pombe

The target of rapamycin (TOR), a major pathway for the regulation of cell growth and proliferation is conserved from yeast to humans. Fission yeast contains two tor complexes, TORC1 is crucial for cell growth while TORC2 gets activated under stress conditions. Pop3/Wat1, a mammalian Lst8 ortholog is an important component of both TOR complexes and has been implicated in the oxidative stress response pathway. Here in this study, the genetic interaction analysis revealed a synthetic lethal interaction of wat1 with tor2-287 mutant cells. Co-immunoprecipitation analysis revealed Wat1 interacts with TORC1 components Tor2, Mip1, and Tco89 while wat1-17 mutant protein fails to interact with these proteins. In the absence of Wat1, the cells arrest at G1 phase with reduced cell size at non-permissive temperature reminiscent of tor2-287 mutant phenotype. Similarly, inactivation of Wat1 results in the failure of TORC1 mediated phosphorylation of Psk1 and Rps602, leading to dysregulation of amino acid permeases and delocalization of Gaf1, a DNA binding transcription factor. Overall, we have hypothesized that Wat1/Pop3 is required to execute the function of TORC1.

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来源期刊
Fungal Genetics and Biology
Fungal Genetics and Biology 生物-遗传学
CiteScore
6.20
自引率
3.30%
发文量
66
审稿时长
85 days
期刊介绍: Fungal Genetics and Biology, formerly known as Experimental Mycology, publishes experimental investigations of fungi and their traditional allies that relate structure and function to growth, reproduction, morphogenesis, and differentiation. This journal especially welcomes studies of gene organization and expression and of developmental processes at the cellular, subcellular, and molecular levels. The journal also includes suitable experimental inquiries into fungal cytology, biochemistry, physiology, genetics, and phylogeny. Fungal Genetics and Biology publishes basic research conducted by mycologists, cell biologists, biochemists, geneticists, and molecular biologists. Research Areas include: • Biochemistry • Cytology • Developmental biology • Evolutionary biology • Genetics • Molecular biology • Phylogeny • Physiology.
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