Department of Physics, University of California at San Diego, La Jolla, CA, USA.
Section of Molecular Biology, Division of Biological Sciences, University of California at San Diego, La Jolla, CA, USA.
Mol Syst Biol. 2021 May;17(5):e9536. doi: 10.15252/msb.20209536.
Accurate measurements of cellular protein concentrations are invaluable to quantitative studies of gene expression and physiology in living cells. Here, we developed a versatile mass spectrometric workflow based on data-independent acquisition proteomics (DIA/SWATH) together with a novel protein inference algorithm (xTop). We used this workflow to accurately quantify absolute protein abundances in Escherichia coli for > 2,000 proteins over > 60 growth conditions, including nutrient limitations, non-metabolic stresses, and non-planktonic states. The resulting high-quality dataset of protein mass fractions allowed us to characterize proteome responses from a coarse (groups of related proteins) to a fine (individual) protein level. Hereby, a plethora of novel biological findings could be elucidated, including the generic upregulation of low-abundant proteins under various metabolic limitations, the non-specificity of catabolic enzymes upregulated under carbon limitation, the lack of large-scale proteome reallocation under stress compared to nutrient limitations, as well as surprising strain-dependent effects important for biofilm formation. These results present valuable resources for the systems biology community and can be used for future multi-omics studies of gene regulation and metabolic control in E. coli.
准确测量细胞内蛋白质浓度对于研究活细胞中的基因表达和生理学具有重要意义。在这里,我们开发了一种基于数据非依赖采集蛋白质组学(DIA/SWATH)和新型蛋白质推断算法(xTop)的通用质谱工作流程。我们使用该工作流程在超过 60 种生长条件下,包括营养限制、非代谢应激和非浮游状态下,对超过 2000 种蛋白质进行了精确的绝对蛋白质丰度定量。由此产生的高质量蛋白质质量分数数据集使我们能够从粗(相关蛋白质组)到细(单个蛋白质)水平来描述蛋白质组的响应。因此,可以阐明大量新的生物学发现,包括各种代谢限制下低丰度蛋白质的普遍上调、碳限制下上调的分解代谢酶的非特异性、与营养限制相比应激下大规模蛋白质组重新分配的缺乏,以及对生物膜形成至关重要的令人惊讶的菌株依赖性效应。这些结果为系统生物学界提供了有价值的资源,并可用于未来大肠杆菌中基因调控和代谢控制的多组学研究。