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酿酒酵母的一个耐热突变体显示出两种热休克蛋白的组成型合成以及生长改变。

A heat shock-resistant mutant of Saccharomyces cerevisiae shows constitutive synthesis of two heat shock proteins and altered growth.

作者信息

Iida H, Yahara I

出版信息

J Cell Biol. 1984 Oct;99(4 Pt 1):1441-50. doi: 10.1083/jcb.99.4.1441.

DOI:10.1083/jcb.99.4.1441
PMID:6384238
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC2113327/
Abstract

A heat shock-resistant mutant of the budding yeast Saccharomyces cerevisiae was isolated at the mutation frequency of 10(-7) from a culture treated with ethyl methane sulfonate. Cells of the mutant are approximately 1,000-fold more resistant to lethal heat shock than those of the parental strain. Tetrad analysis indicates that phenotypes revealed by this mutant segregated together in the ratio 2+:2- from heterozygotes constructed with the wild-type strain of the opposite mating type, and are, therefore, attributed to a single nuclear mutation. The mutated gene in the mutant was herein designated hsr1 (heat shock response). The hsr1 allele is recessive to the HSR1+ allele of the wild-type strain. Exponentially growing cells of hsr1 mutant were found to constitutively synthesize six proteins that are not synthesized or are synthesized at reduced rates in HSR1+ cells unless appropriately induced. These proteins include one hsp/G0-protein (hsp48A), one hsp (hsp48B), and two G0-proteins (p73, p56). Heterozygous diploid (hsr1/HSR1+) cells do not synthesize the proteins constitutively induced in hsr1 cells, which suggests that the product of the HSR1 gene might negatively regulate the synthesis of these proteins. The hsr1 mutation also led to altered growth of the mutant cells. The mutation elongated the duration of G1 period in the cell cycle and affected both growth arrest by sulfur starvation and growth recovery from it. We discuss the problem of which protein(s) among those constitutively expressed in growing cells of the hsr1 mutant is responsible for heat shock resistance and alterations in the growth control.

摘要

从经甲磺酸乙酯处理的酿酒酵母培养物中,以10(-7)的突变频率分离出一种抗热休克的芽殖酵母突变体。该突变体的细胞对致死性热休克的抗性比亲本菌株的细胞高约1000倍。四分体分析表明,由该突变体显示的表型在与相反交配型的野生型菌株构建的杂合子中以2+:2-的比例共同分离,因此归因于单个核突变。本文将该突变体中的突变基因命名为hsr1(热休克反应)。hsr1等位基因对野生型菌株的HSR1+等位基因是隐性的。发现hsr1突变体指数生长的细胞组成性地合成六种蛋白质,这些蛋白质在HSR1+细胞中不合成或以降低的速率合成,除非受到适当诱导。这些蛋白质包括一种hsp/G0-蛋白(hsp48A)、一种hsp(hsp48B)和两种G0-蛋白(p73、p56)。杂合二倍体(hsr1/HSR1+)细胞不组成性地合成在hsr1细胞中诱导合成的蛋白质,这表明HSR1基因的产物可能对这些蛋白质的合成起负调控作用。hsr1突变还导致突变体细胞生长改变。该突变延长了细胞周期中G1期的持续时间,并影响了硫饥饿导致的生长停滞及其后的生长恢复。我们讨论了在hsr1突变体生长细胞中组成性表达的蛋白质中,哪种蛋白质负责抗热休克和生长控制改变的问题。

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A heat shock-resistant mutant of Saccharomyces cerevisiae shows constitutive synthesis of two heat shock proteins and altered growth.酿酒酵母的一个耐热突变体显示出两种热休克蛋白的组成型合成以及生长改变。
J Cell Biol. 1984 Oct;99(4 Pt 1):1441-50. doi: 10.1083/jcb.99.4.1441.
2
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引用本文的文献

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Coupling thermotolerance and high production of recombinant protein by CYR1 mutation via cAMP signaling cascades.通过 cAMP 信号级联途径突变 CYR1 实现热耐受性和重组蛋白高表达的偶联。
Commun Biol. 2024 May 24;7(1):627. doi: 10.1038/s42003-024-06341-z.
2
Intracellular localization of heat shock proteins in maize.热休克蛋白在玉米中的细胞内定位。
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Actin gene mutations in Drosophila; heat shock activation in the indirect flight muscles.果蝇肌动蛋白基因突变;热休克在间接飞行肌中的激活。
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The PDE1-encoded low-affinity phosphodiesterase in the yeast Saccharomyces cerevisiae has a specific function in controlling agonist-induced cAMP signaling.酵母酿酒酵母中由PDE1编码的低亲和力磷酸二酯酶在控制激动剂诱导的cAMP信号传导中具有特定功能。
Mol Biol Cell. 1999 Jan;10(1):91-104. doi: 10.1091/mbc.10.1.91.
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Stress response of yeast.酵母的应激反应。
Biochem J. 1993 Feb 15;290 ( Pt 1)(Pt 1):1-13. doi: 10.1042/bj2900001.
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The yeast and mammalian Ras pathways control transcription of heat shock genes independently of heat shock transcription factor.酵母和哺乳动物的Ras信号通路独立于热休克转录因子调控热休克基因的转录。
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The major inducible heat shock protein hsp68 is not required for acquisition of thermal resistance in mouse plasmacytoma cell lines.在小鼠浆细胞瘤细胞系中获得热抗性并不需要主要的诱导型热休克蛋白hsp68。
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本文引用的文献

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Chromatin-associated heat shock proteins of Dictyostelium.盘基网柄菌中与染色质相关的热休克蛋白
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Specific early-G1 blocks accompanied with stringent response in Saccharomyces cerevisiae lead to growth arrest in resting state similar to the G0 of higher eucaryotes.酿酒酵母中特定的早期G1期阻滞伴随着严格反应,导致细胞在静止状态下生长停滞,类似于高等真核生物的G0期。
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