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酿酒酵母中的丝裂原活化蛋白激酶途径。

MAP kinase pathways in the yeast Saccharomyces cerevisiae.

作者信息

Gustin M C, Albertyn J, Alexander M, Davenport K

机构信息

Department of Biochemistry and Cell Biology Rice University, Houston, Texas 77251-1892, USA.

出版信息

Microbiol Mol Biol Rev. 1998 Dec;62(4):1264-300. doi: 10.1128/MMBR.62.4.1264-1300.1998.

DOI:10.1128/MMBR.62.4.1264-1300.1998
PMID:9841672
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC98946/
Abstract

A cascade of three protein kinases known as a mitogen-activated protein kinase (MAPK) cascade is commonly found as part of the signaling pathways in eukaryotic cells. Almost two decades of genetic and biochemical experimentation plus the recently completed DNA sequence of the Saccharomyces cerevisiae genome have revealed just five functionally distinct MAPK cascades in this yeast. Sexual conjugation, cell growth, and adaptation to stress, for example, all require MAPK-mediated cellular responses. A primary function of these cascades appears to be the regulation of gene expression in response to extracellular signals or as part of specific developmental processes. In addition, the MAPK cascades often appear to regulate the cell cycle and vice versa. Despite the success of the gene hunter era in revealing these pathways, there are still many significant gaps in our knowledge of the molecular mechanisms for activation of these cascades and how the cascades regulate cell function. For example, comparison of different yeast signaling pathways reveals a surprising variety of different types of upstream signaling proteins that function to activate a MAPK cascade, yet how the upstream proteins actually activate the cascade remains unclear. We also know that the yeast MAPK pathways regulate each other and interact with other signaling pathways to produce a coordinated pattern of gene expression, but the molecular mechanisms of this cross talk are poorly understood. This review is therefore an attempt to present the current knowledge of MAPK pathways in yeast and some directions for future research in this area.

摘要

一种由三种蛋白激酶组成的级联反应,即丝裂原活化蛋白激酶(MAPK)级联反应,通常作为真核细胞信号通路的一部分被发现。近二十年的遗传学和生物化学实验,加上最近完成的酿酒酵母基因组DNA序列,揭示了这种酵母中只有五种功能不同的MAPK级联反应。例如,有性接合、细胞生长和应激适应都需要MAPK介导的细胞反应。这些级联反应的一个主要功能似乎是响应细胞外信号或作为特定发育过程的一部分来调节基因表达。此外,MAPK级联反应似乎经常调节细胞周期,反之亦然。尽管在基因探寻时代成功揭示了这些信号通路,但在我们对这些级联反应激活的分子机制以及级联反应如何调节细胞功能的认识上,仍存在许多重大空白。例如,对不同酵母信号通路的比较揭示了多种不同类型的上游信号蛋白,它们的作用是激活MAPK级联反应,但上游蛋白实际上如何激活级联反应仍不清楚。我们还知道酵母MAPK通路相互调节,并与其他信号通路相互作用,以产生协调的基因表达模式,但这种相互作用的分子机制却知之甚少。因此,本综述旨在介绍酵母中MAPK通路的当前知识以及该领域未来研究的一些方向。

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本文引用的文献

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Signaling for growth orientation and cell differentiation by surface topography in uromyces.在尿黏菌中,通过表面形貌进行生长方向和细胞分化的信号传递。
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Repression of yeast Ste12 transcription factor by direct binding of unphosphorylated Kss1 MAPK and its regulation by the Ste7 MEK.未磷酸化的Kss1丝裂原活化蛋白激酶(MAPK)通过直接结合抑制酵母Ste12转录因子及其受Ste7丝裂原活化蛋白激酶激酶(MEK)的调控。
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Membrane recruitment of the kinase cascade scaffold protein Ste5 by the Gbetagamma complex underlies activation of the yeast pheromone response pathway.Gβγ复合体对激酶级联支架蛋白Ste5的膜募集是酵母信息素反应途径激活的基础。
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Yeast PKA represses Msn2p/Msn4p-dependent gene expression to regulate growth, stress response and glycogen accumulation.酵母蛋白激酶A抑制Msn2p/Msn4p依赖的基因表达,以调节生长、应激反应和糖原积累。
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Spa2p interacts with cell polarity proteins and signaling components involved in yeast cell morphogenesis.Spa2p与参与酵母细胞形态发生的细胞极性蛋白和信号成分相互作用。
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Pheromone-dependent G1 cell cycle arrest requires Far1 phosphorylation, but may not involve inhibition of Cdc28-Cln2 kinase, in vivo.在体内,信息素依赖的G1期细胞周期停滞需要Far1磷酸化,但可能不涉及对Cdc28-Cln2激酶的抑制。
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LIM domains: multiple roles as adapters and functional modifiers in protein interactions.LIM结构域:在蛋白质相互作用中作为衔接子和功能修饰剂的多种作用
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Regulation of the fission yeast transcription factor Pap1 by oxidative stress: requirement for the nuclear export factor Crm1 (Exportin) and the stress-activated MAP kinase Sty1/Spc1.氧化应激对裂殖酵母转录因子Pap1的调控:对核输出因子Crm1(输出蛋白)和应激激活的丝裂原活化蛋白激酶Sty1/Spc1的需求。
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