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酿酒酵母化学应激抗性的进化与生化方面

Evolutionary and Biochemical Aspects of Chemical Stress Resistance in Saccharomyces cerevisiae.

作者信息

Venancio Thiago Motta, Bellieny-Rabelo Daniel, Aravind L

机构信息

Laboratório de Química e Função de Proteínas e Peptídeos, Centro de Biociências e Biotecnologia, Universidade Estadual do Norte Fluminense Darcy Ribeiro Campos dos Goytacazes, Brazil.

出版信息

Front Genet. 2012 Mar 30;3:47. doi: 10.3389/fgene.2012.00047. eCollection 2012.

Abstract

Large-scale chemical genetics screens (chemogenomics) in yeast have been widely used to find drug targets, understand the mechanism-of-action of compounds, and unravel the biochemistry of drug resistance. Chemogenomics is based on the comparison of growth of gene deletants in the presence and absence of a chemical substance. Such studies showed that more than 90% of the yeast genes are required for growth in the presence of at least one chemical. Analysis of these data, using computational approaches, has revealed non-trivial features of the natural chemical tolerance systems. As a result two non-overlapping sets of genes are seen to respectively impart robustness and evolvability in the context of natural chemical resistance. The former is composed of multidrug-resistance genes, whereas the latter comprises genes sharing chemical genetic profiles with many others. Recent publications showing the potential applications chemogenomics in studying the pharmacological basis of various drugs are discussed, as well as the expansion of chemogenomics to other organisms. Finally, integration of chemogenomics with sensitive sequence analysis and ubiquitination/phosphorylation data led to the discovery of a new conserved domain and important post-translational modification pathways involved in stress resistance.

摘要

酵母中的大规模化学遗传学筛选(化学基因组学)已被广泛用于寻找药物靶点、理解化合物的作用机制以及揭示耐药性的生物化学过程。化学基因组学基于在存在和不存在化学物质的情况下对基因缺失突变体生长情况的比较。此类研究表明,在至少一种化学物质存在的情况下,超过90%的酵母基因是生长所必需的。使用计算方法对这些数据进行分析,揭示了天然化学耐受系统的重要特征。结果发现,两组不重叠的基因分别在天然化学抗性的背景下赋予了稳健性和可进化性。前者由多药耐药基因组成,而后者包括与许多其他基因具有化学遗传特征的基因。讨论了近期展示化学基因组学在研究各种药物药理学基础方面潜在应用的出版物,以及化学基因组学向其他生物体的扩展。最后,化学基因组学与灵敏序列分析以及泛素化/磷酸化数据的整合,导致发现了一个新的保守结构域以及参与应激抗性的重要翻译后修饰途径。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/dc00/3315702/bfceebc90c19/fgene-03-00047-g001.jpg

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