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首页> 外文期刊>NPJ systems biology and applications. >Integrating highly quantitative proteomics and genome-scale metabolic modeling to study pH adaptation in the human pathogen Enterococcus faecalis
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Integrating highly quantitative proteomics and genome-scale metabolic modeling to study pH adaptation in the human pathogen Enterococcus faecalis

机译:整合高度定量的蛋白质组学和基因组规模的代谢模型,以研究人类病原体粪肠球菌中的pH适应性

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Genome-scale metabolic models represent the entirety of metabolic reactions of an organism based on the annotation of the respective genome. These models commonly allow all reactions to proceed concurrently, disregarding the fact that at no point all proteins will be present in a cell. The metabolic reaction space can be constrained to a more physiological state using experimentally obtained information on enzyme abundances. However, high-quality, genome-wide protein measurements have been challenging and typically transcript abundances have been used as a surrogate for protein measurements. With recent developments in mass spectrometry-based proteomics, exemplified by SWATH-MS, the acquisition of highly quantitative proteome-wide data at reasonable throughput has come within reach. Here we present methodology to integrate such proteome-wide data into genome-scale models. We applied this methodology to study cellular changes in Enterococcus faecalis during adaptation to low pH. Our results indicate reduced proton production in the central metabolism and decreased membrane permeability for protons due to different membrane composition. We conclude that proteomic data constrain genome-scale models to a physiological state and, in return, genome-scale models are useful tools to contextualize proteomic data.
机译:基于相应基因组的注释,基因组规模的代谢模型代表了生物体的整体代谢反应。这些模型通常允许所有反应同时进行,而无视所有蛋白质都不会存在于细胞中的事实。使用实验获得的有关酶丰度的信息,可以将代谢反应空间限制在更生理的状态。然而,高质量的全基因组蛋白质测量一直具有挑战性,并且通常转录物丰度已被用作蛋白质测量的替代品。随着以质谱为基础的蛋白质组学的最新发展(以SWATH-MS为例),以合理的吞吐率获得高度定量的蛋白质组范围的数据已成为可能。在这里,我们介绍了将这种蛋白质组数据整合到基因组规模模型中的方法。我们应用这种方法来研究粪便肠球菌对低pH的适应过程中的细胞变化。我们的结果表明由于不同的膜组成,质子在中央代谢中的产生减少,质子的膜渗透性降低。我们得出的结论是,蛋白质组学数据将基因组规模的模型约束到一种生理状态,因此,基因组规模的模型是将蛋白质组学数据关联起来的有用工具。

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