HRD1跨膜结构域突变的阳性遗传选择强调了HRD1复合物完整性在ERAD中的重要性。

IF 1.8 4区 生物学 Q3 GENETICS & HEREDITY
Kunio Nakatsukasa, Sylvia Wigge, Yuki Takano, Tomoyuki Kawarasaki, Takumi Kamura, Jeffrey L Brodsky
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引用次数: 3

摘要

内质网(ER)中错误折叠的蛋白质被逆转录到细胞质中进行泛素化和蛋白酶体降解。在这个被称为内质网相关降解(ERAD)的过程中,内质网嵌入的Hrd1泛素连接酶在识别、泛素化和逆转录许多管腔和整体膜蛋白中起着核心作用。为了更好地定义Hrd1在酿酒酵母中的作用机制,已经开发了几种模型底物。一个底物是Sec61-2, Sec61易位通道的温度敏感等位基因。表达Sec61-2的细胞在25°C下生长,因为该蛋白是稳定的,但Sec61-2酵母在38°C下不能存活,因为突变的蛋白以hrd1依赖的方式降解。因此,删除HRD1可以稳定Sec61-2,因此sec61-2hrd1∆双突变体在38°C下存活。这种独特的表型使我们能够对HRD1中功能丧失等位基因进行无偏筛选。基于其在介导底物逆转录中的重要性,该筛选也被开发用于关注编码Hrd1跨膜富结构域的序列突变。最终,在HRD1中发现了一组隐性突变,包括导致HRD1传递到ERAD途径的一系列不稳定突变。一个更稳定的突变体位于埋藏的跨膜结构域,然而在表达该突变体的酵母中,Hrd1复合物被破坏。总之,这些数据证实了ERAD过程中Hrd1复合物完整性的重要性,表明跨膜结构域之间的变构相互作用调节了Hrd1复合物的形成,并为该领域提供了新的工具来定义底物反转录易位过程中ERAD组分之间的动态相互作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

A positive genetic selection for transmembrane domain mutations in HRD1 underscores the importance of Hrd1 complex integrity during ERAD.

A positive genetic selection for transmembrane domain mutations in HRD1 underscores the importance of Hrd1 complex integrity during ERAD.

Misfolded proteins in the endoplasmic reticulum (ER) are retrotranslocated to the cytosol for ubiquitination and degradation by the proteasome. During this process, known as ER-associated degradation (ERAD), the ER-embedded Hrd1 ubiquitin ligase plays a central role in recognizing, ubiquitinating, and retrotranslocating scores of lumenal and integral membrane proteins. To better define the mechanisms underlying Hrd1 function in Saccharomyces cerevisiae, several model substrates have been developed. One substrate is Sec61-2, a temperature sensitive allele of the Sec61 translocation channel. Cells expressing Sec61-2 grow at 25 °C because the protein is stable, but sec61-2 yeast are inviable at 38 °C because the mutated protein is degraded in a Hrd1-dependent manner. Therefore, deleting HRD1 stabilizes Sec61-2 and hence sec61-2hrd1∆ double mutants are viable at 38 °C. This unique phenotype allowed us to perform a non-biased screen for loss-of-function alleles in HRD1. Based on its importance in mediating substrate retrotranslocation, the screen was also developed to focus on mutations in sequences encoding Hrd1's transmembrane-rich domain. Ultimately, a group of recessive mutations was identified in HRD1, including an ensemble of destabilizing mutations that resulted in the delivery of Hrd1 to the ERAD pathway. A more stable mutant resided in a buried transmembrane domain, yet the Hrd1 complex was disrupted in yeast expressing this mutant. Together, these data confirm the importance of Hrd1 complex integrity during ERAD, suggest that allosteric interactions between transmembrane domains regulate Hrd1 complex formation, and provide the field with new tools to define the dynamic interactions between ERAD components during substrate retrotranslocation.

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来源期刊
Current Genetics
Current Genetics 生物-遗传学
CiteScore
6.00
自引率
0.00%
发文量
34
审稿时长
1 months
期刊介绍: Current Genetics publishes genetic, genomic, molecular and systems-level analysis of eukaryotic and prokaryotic microorganisms and cell organelles. All articles are peer-reviewed. The journal welcomes submissions employing any type of research approach, be it analytical (aiming at a better understanding), applied (aiming at practical applications), synthetic or theoretical. Current Genetics no longer accepts manuscripts describing the genome sequence of mitochondria/chloroplast of a small number of species. Manuscripts covering sequence comparisons and analyses that include a large number of species will still be considered.
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