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酵母交叉保护的连锁作图将基因表达变化与更高级的生物体性状联系起来。

Linkage mapping of yeast cross protection connects gene expression variation to a higher-order organismal trait.

机构信息

Department of Biological Sciences, University of Arkansas, Fayetteville, Arkansas, United States of America.

Interdisciplinary Graduate Program in Cell and Molecular Biology, University of Arkansas, Fayetteville, Arkansas, United States of America.

出版信息

PLoS Genet. 2018 Apr 12;14(4):e1007335. doi: 10.1371/journal.pgen.1007335. eCollection 2018 Apr.

Abstract

Gene expression variation is extensive in nature, and is hypothesized to play a major role in shaping phenotypic diversity. However, connecting differences in gene expression across individuals to higher-order organismal traits is not trivial. In many cases, gene expression variation may be evolutionarily neutral, and in other cases expression variation may only affect phenotype under specific conditions. To understand connections between gene expression variation and stress defense phenotypes, we have been leveraging extensive natural variation in the gene expression response to acute ethanol in laboratory and wild Saccharomyces cerevisiae strains. Previous work found that the genetic architecture underlying these expression differences included dozens of "hotspot" loci that affected many transcripts in trans. In the present study, we provide new evidence that one of these expression QTL hotspot loci affects natural variation in one particular stress defense phenotype-ethanol-induced cross protection against severe doses of H2O2. A major causative polymorphism is in the heme-activated transcription factor Hap1p, which we show directly impacts cross protection, but not the basal H2O2 resistance of unstressed cells. This provides further support that distinct cellular mechanisms underlie basal and acquired stress resistance. We also show that Hap1p-dependent cross protection relies on novel regulation of cytosolic catalase T (Ctt1p) during ethanol stress in a wild oak strain. Because ethanol accumulation precedes aerobic respiration and accompanying reactive oxygen species formation, wild strains with the ability to anticipate impending oxidative stress would likely be at an advantage. This study highlights how strategically chosen traits that better correlate with gene expression changes can improve our power to identify novel connections between gene expression variation and higher-order organismal phenotypes.

摘要

基因表达的变异性在自然界中非常广泛,据推测它在塑造表型多样性方面起着重要作用。然而,将个体之间的基因表达差异与更高层次的生物表型联系起来并非易事。在许多情况下,基因表达的变异性可能是进化中性的,而在其他情况下,表达的变异性可能仅在特定条件下影响表型。为了理解基因表达变异与应激防御表型之间的联系,我们一直在利用实验室和野生酿酒酵母菌株中急性乙醇应答的广泛自然变异来进行研究。以前的工作发现,这些表达差异的遗传结构包括几十个影响许多转录物的“热点”位点。在本研究中,我们提供了新的证据表明,这些表达 QTL 热点位点之一影响了一种特定的应激防御表型——乙醇诱导的对严重剂量 H2O2 的交叉保护的自然变异。一个主要的因果多态性位于血红素激活转录因子 Hap1p 中,我们直接表明该多态性影响交叉保护,但不影响未受应激细胞的基础 H2O2 抗性。这进一步支持了基础和获得性应激抗性的不同细胞机制。我们还表明,依赖 Hap1p 的交叉保护依赖于在野生橡树菌株的乙醇应激期间对细胞质过氧化氢酶 T (Ctt1p) 的新调控。由于乙醇积累先于需氧呼吸和伴随的活性氧形成,因此能够预测即将发生的氧化应激的野生菌株可能具有优势。这项研究强调了如何选择与基因表达变化更好相关的策略性特征,可以提高我们识别基因表达变异与更高层次生物表型之间新联系的能力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1e07/5978988/2b7b69906cd6/pgen.1007335.g001.jpg

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