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Mass Spectrometry-based Workflow for Accurate Quantification of Escherichia coli Enzymes: How Proteomics Can Play a Key Role in Metabolic Engineering

机译:基于质谱的工作流程用于准确定量大肠杆菌酶:蛋白质组学如何在代谢工程中发挥关键作用

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摘要

Metabolic engineering aims to design high performance microbial strains producing compounds of interest. This requires systems-level understanding; genome-scale models have therefore been developed to predict metabolic fluxes. However, multi-omics data including genomics, transcriptomics, fluxomics, and proteomics may be required to model the metabolism of potential cell factories. Recent technological advances to quantitative proteomics have made mass spectrometry-based quantitative assays an interesting alternative to more traditional immuno-affinity based approaches. This has improved specificity and multiplexing capabilities. In this study, we developed a quantification workflow to analyze enzymes involved in central metabolism in Escherichia coli (E. coli). This workflow combined full-length isotopically labeled standards with selected reaction monitoring analysis. First, full-length 15N labeled standards were produced and calibrated to ensure accurate measurements. Liquid chromatography conditions were then optimized for reproducibility and multiplexing capabilities over a single 30-min liquid chromatography-MS analysis. This workflow was used to accurately quantify 22 enzymes involved in E. coli central metabolism in a wild-type reference strain and two derived strains, optimized for higher NADPH production. In combination with measurements of metabolic fluxes, proteomics data can be used to assess different levels of regulation, in particular enzyme abundance and catalytic rate. This provides information that can be used to design specific strains used in biotechnology. In addition, accurate measurement of absolute enzyme concentrations is key to the development of predictive kinetic models in the context of metabolic engineering.
机译:代谢工程旨在设计可产生目标化合物的高性能微生物菌株。这需要系统级的理解;因此,已经开发出基因组规模的模型来预测代谢通量。但是,可能需要包括基因组学,转录组学,通量组学和蛋白质组学在内的多组学数据来模拟潜在细胞工厂的代谢。定量蛋白质组学的最新技术进步已使基于质谱的定量分析成为基于传统免疫亲和方法的有趣替代方法。这提高了特异性和多路复用能力。在这项研究中,我们开发了一种定量工作流程来分析大肠杆菌(E. coli)中参与中央代谢的酶。该工作流程将全长同位素标记的标准品与选定的反应监测分析结合在一起。首先,生产全长 15 N标记的标准液并进行校准,以确保准确的测量。然后,在单次30分钟液相色谱-MS分析中,优化液相色谱条件以提高重现性和多重性。该工作流程用于准确定量野生型参考菌株和两个衍生菌株中大肠杆菌中枢代谢所涉及的22种酶,这些酶已针对更高的NADPH产量进行了优化。结合代谢通量的测量,蛋白质组学数据可用于评估不同水平的调节,尤其是酶丰度和催化速率。这提供了可用于设计生物技术中使用的特定菌株的信息。另外,在代谢工程的背景下,精确测量绝对酶浓度是预测动力学模型发展的关键。

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