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轻度乙醇预处理诱导获得性耐盐性与生长恢复的独立机制在. 中。

Independent Mechanisms for Acquired Salt Tolerance versus Growth Resumption Induced by Mild Ethanol Pretreatment in .

机构信息

Department of Biological Sciences, University of Arkansas-Fayetteville, Fayetteville, Arkansas, USA.

Laboratory of Genetics, University of Wisconsin-Madison, Madison, Wisconsin, USA.

出版信息

mSphere. 2018 Nov 28;3(6):e00574-18. doi: 10.1128/mSphere.00574-18.

Abstract

All living organisms must recognize and respond to various environmental stresses throughout their lifetime. In natural environments, cells frequently encounter fluctuating concentrations of different stressors that can occur in combination or sequentially. Thus, the ability to anticipate an impending stress is likely ecologically relevant. One possible mechanism for anticipating future stress is acquired stress resistance, where cells preexposed to a mild sublethal dose of stress gain the ability to survive an otherwise lethal dose of stress. We have been leveraging wild strains of to investigate natural variation in the yeast ethanol stress response and its role in acquired stress resistance. Here, we report that a wild vineyard isolate possesses ethanol-induced cross protection against severe concentrations of salt. Because this phenotype correlates with ethanol-dependent induction of the genes, which encode sodium efflux pumps already associated with salt resistance, we hypothesized that variation in expression was responsible for differences in acquired salt tolerance across strains. Surprisingly, we found that the genes were completely dispensable for ethanol-induced survival of high salt concentrations in the wild vineyard strain. Instead, the genes were necessary for the ability to resume growth on high concentrations of salt following a mild ethanol pretreatment. Surprisingly, this growth acclimation phenotype was also shared by the lab yeast strain despite lack of induction under this condition. This study underscores that cross protection can affect both viability and growth through distinct mechanisms, both of which likely confer fitness effects that are ecologically relevant. Microbes in nature frequently experience "boom or bust" cycles of environmental stress. Thus, microbes that can anticipate the onset of stress would have an advantage. One way that microbes anticipate future stress is through acquired stress resistance, where cells exposed to a mild dose of one stress gain the ability to survive an otherwise lethal dose of a subsequent stress. In the budding yeast , certain stressors can cross protect against high salt concentrations, though the mechanisms governing this acquired stress resistance are not well understood. In this study, we took advantage of wild yeast strains to understand the mechanism underlying ethanol-induced cross protection against high salt concentrations. We found that mild ethanol stress allows cells to resume growth on high salt, which involves a novel role for a well-studied salt transporter. Overall, this discovery highlights how leveraging natural variation can provide new insights into well-studied stress defense mechanisms.

摘要

所有生物都必须在其一生中识别和应对各种环境压力。在自然环境中,细胞经常会遇到不同浓度的应激物波动,这些应激物可以组合或连续发生。因此,预测即将到来的压力的能力在生态上可能是相关的。一种预测未来压力的可能机制是获得性应激抗性,即细胞预先暴露于轻度亚致死剂量的应激下,获得了耐受否则致命剂量应激的能力。我们一直在利用野生型酵母菌株来研究酵母乙醇应激反应的自然变异及其在获得性应激抗性中的作用。在这里,我们报告说,一种野生葡萄园分离株具有乙醇诱导的对严重浓度盐的交叉保护。因为这种表型与乙醇依赖性诱导的基因相关,这些基因编码已经与耐盐性相关的钠离子外排泵,所以我们假设,在不同菌株之间,表达的变化导致了获得性耐盐性的差异。令人惊讶的是,我们发现,在野生葡萄园菌株中,基因对于乙醇诱导的高盐浓度存活完全是可有可无的。相反,基因对于在轻度乙醇预处理后恢复高盐浓度生长的能力是必需的。令人惊讶的是,尽管在这种条件下没有诱导,但实验室酵母菌株也具有这种生长适应表型。这项研究强调,交叉保护可以通过不同的机制影响生存能力和生长能力,这两者都可能赋予具有生态相关性的适应性优势。自然界中的微生物经常经历环境应激的“兴衰”循环。因此,能够预测应激的微生物将具有优势。微生物预测未来应激的一种方式是通过获得性应激抗性,即暴露于轻度应激剂量的细胞获得耐受随后的致死剂量应激的能力。在出芽酵母中,某些应激物可以对高盐浓度产生交叉保护,尽管这种获得性应激抗性的机制尚不清楚。在这项研究中,我们利用野生酵母菌株来理解乙醇诱导的对高盐浓度的交叉保护的机制。我们发现,轻度乙醇应激允许细胞在高盐下恢复生长,这涉及到一种研究充分的盐转运体的新作用。总的来说,这一发现强调了如何利用自然变异可以为研究充分的应激防御机制提供新的见解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9988/6262259/f9e468c4ac4c/sph0061827150001.jpg

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