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PNAS Plus: Yeast metabolic and signaling genes are required for heat-shock survival and have little overlap with the heat-induced genes

机译:PNAS Plus:酵母代谢和信号转导基因是热休克生存所必需的与热诱导基因几乎没有重叠

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摘要

Genome-wide gene-expression studies have shown that hundreds of yeast genes are induced or repressed transiently by changes in temperature; many are annotated to stress response on this basis. To obtain a genome-scale assessment of which genes are functionally important for innate and/or acquired thermotolerance, we combined the use of a barcoded pool of ∼4,800 nonessential, prototrophic Saccharomyces cerevisiae deletion strains with Illumina-based deep-sequencing technology. As reported in other recent studies that have used deletion mutants to study stress responses, we observed that gene deletions resulting in the highest thermosensitivity generally are not the same as those transcriptionally induced in response to heat stress. Functional analysis of identified genes revealed that metabolism, cellular signaling, and chromatin regulation play roles in regulating thermotolerance and in acquired thermotolerance. However, for most of the genes identified, the molecular mechanism behind this action remains unclear. In fact, a large fraction of identified genes are annotated as having unknown functions, further underscoring our incomplete understanding of the response to heat shock. We suggest that survival after heat shock depends on a small number of genes that function in assessing the metabolic health of the cell and/or regulate its growth in a changing environment.
机译:全基因组基因表达研究表明,温度变化会瞬时诱导或抑制数百个酵母基因。在此基础上,许多人都被标注为压力反应。为了获得基因组规模的评估,以了解哪些基因对于先天和/或获得性耐热性具有功能上的重要意义,我们结合了使用条形码的约4,800种非营养型,原养型酿酒酵母缺失菌株的条形码库和基于Illumina的深度测序技术。正如其他最近使用缺失突变体研究应激反应的研究所报道的那样,我们观察到导致最高热敏性的基因缺失通常与响应热应激而转录诱导的缺失不同。对已鉴定基因的功能分析表明,代谢,细胞信号传导和染色质调节在调节耐热性和获得性耐热性中发挥作用。但是,对于大多数鉴定出的基因,这一作用背后的分子机制仍然不清楚。实际上,大部分已鉴定的基因被注释为具有未知功能,这进一步突出了我们对热休克反应的不完全了解。我们建议,热休克后的存活取决于少数基因,这些基因在评估细胞的代谢健康和/或调节环境变化中的生长中起作用。

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