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酿酒酵母中Hmg2p诱导的内质网重塑的遗传与结构分析

Genetic and structural analysis of Hmg2p-induced endoplasmic reticulum remodeling in Saccharomyces cerevisiae.

作者信息

Federovitch Christine M, Jones Ying Z, Tong Amy H, Boone Charles, Prinz William A, Hampton Randolph Y

机构信息

UCSD Division of Biological Sciences, Section of Cell and Developmental Biology, University of California, San Diego, La Jolla, CA 92093-0347, USA.

出版信息

Mol Biol Cell. 2008 Oct;19(10):4506-20. doi: 10.1091/mbc.e07-11-1188. Epub 2008 Jul 30.

Abstract

The endoplasmic reticulum (ER) is highly plastic, and increased expression of distinct single ER-resident membrane proteins, such as HMG-CoA reductase (HMGR), can induce a dramatic restructuring of ER membranes into highly organized arrays. Studies on the ER-remodeling behavior of the two yeast HMGR isozymes, Hmg1p and Hmg2p, suggest that they could be mechanistically distinct. We examined the features of Hmg2p required to generate its characteristic structures, and we found that the molecular requirements are similar to those of Hmg1p. However, the structures generated by Hmg1p and Hmg2p have distinct cell biological features determined by the transmembrane regions of the proteins. In parallel, we conducted a genetic screen to identify HER genes (required for Hmg2p-induced ER Remodeling), further confirming that the mechanisms of membrane reorganization by these two proteins are distinct because most of the HER genes were required for Hmg2p but not Hmg1p-induced ER remodeling. One of the HER genes identified was PSD1, which encodes the phospholipid biosynthetic enzyme phosphatidylserine decarboxylase. This direct connection to phospholipid biosynthesis prompted a more detailed examination of the effects of Hmg2p on phospholipid mutants and composition. Our analysis revealed that overexpression of Hmg2p caused significant and specific growth defects in nulls of the methylation pathway for phosphatidylcholine biosynthesis that includes the Psd1p enzyme. Furthermore, increased expression of Hmg2p altered the composition of cellular phospholipids in a manner that implied a role for PSD1. These phospholipid effects, unlike Hmg2p-induced ER remodeling, required the enzymatic activity of Hmg2p. Together, our results indicate that, although related, Hmg2p- and Hmg1p-induced ER remodeling are mechanistically distinct.

摘要

内质网(ER)具有高度可塑性,不同的单一内质网驻留膜蛋白(如HMG-CoA还原酶(HMGR))表达增加可诱导内质网膜戏剧性地重构成高度有序的阵列。对两种酵母HMGR同工酶Hmg1p和Hmg2p的内质网重塑行为研究表明,它们在机制上可能不同。我们研究了生成Hmg2p特征性结构所需的特征,发现其分子要求与Hmg1p相似。然而,由Hmg1p和Hmg2p生成的结构具有由蛋白质跨膜区域决定的不同细胞生物学特征。同时,我们进行了一项遗传筛选以鉴定HER基因(Hmg2p诱导的内质网重塑所需),进一步证实这两种蛋白质的膜重组机制不同,因为大多数HER基因是Hmg2p诱导而非Hmg1p诱导的内质网重塑所必需的。鉴定出的一个HER基因是PSD1,它编码磷脂生物合成酶磷脂酰丝氨酸脱羧酶。这种与磷脂生物合成的直接联系促使我们更详细地研究Hmg2p对磷脂突变体和组成的影响。我们的分析表明,Hmg2p的过表达在包括Psd1p酶的磷脂酰胆碱生物合成甲基化途径缺失的情况下导致显著且特定的生长缺陷。此外,Hmg2p表达增加以暗示PSD1作用的方式改变了细胞磷脂的组成。与Hmg2p诱导的内质网重塑不同,这些磷脂效应需要Hmg2p的酶活性。总之,我们的结果表明,尽管Hmg2p和Hmg1p诱导的内质网重塑相关,但在机制上是不同的。

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