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一种用于简化代谢途径热力学和动力学分析的通用计算框架。

A generalized computational framework to streamline thermodynamics and kinetics analysis of metabolic pathways.

机构信息

National Renewable Energy Laboratory, Golden, CO, 80401, USA.

Department of Microbiology, Miami University, Oxford, OH, 45056, USA.

出版信息

Metab Eng. 2020 Jan;57:140-150. doi: 10.1016/j.ymben.2019.08.006. Epub 2019 Aug 8.

Abstract

Metabolic engineering is a critical biotechnological approach in addressing global energy and environment challenges. Most engineering efforts, however, consist of laborious and inefficient trial-and-error of target pathways, due in part to the lack of methodologies that can comprehensively assess pathway properties in thermodynamics and kinetics. Metabolic engineering can benefit from computational tools that evaluate feasibility, expense and stability of non-natural metabolic pathways. Such tools can also help us understand natural pathways and their regulation at systems level. Here we introduce a computational toolbox, PathParser, which, for the first time, integrates multiple important functions for pathway analysis including thermodynamics analysis, kinetics-based protein cost optimization and robustness analysis. Specifically, PathParser enables optimization of the driving force of a pathway by minimizing the Gibbs free energy of least thermodynamically favorable reaction. In addition, based on reaction thermodynamics and enzyme kinetics, it can compute the minimal enzyme protein cost that supports metabolic flux, and evaluate pathway stability and flux in response to enzyme concentration perturbations. In a demo analysis of the Calvin-Benson-Bassham cycle and photorespiration pathway in the model cyanobacterium Synechocystis PCC 6803, the computation results are corroborated by experimental proteomics data as well as metabolic engineering outcomes. This toolbox may have broad application in metabolic engineering and systems biology in other microbial systems.

摘要

代谢工程是应对全球能源和环境挑战的关键生物技术方法。然而,大多数工程努力都包括对目标途径进行繁琐且低效的反复试验,部分原因是缺乏能够全面评估热力学和动力学途径特性的方法。代谢工程可以受益于评估非天然代谢途径可行性、成本和稳定性的计算工具。这些工具还可以帮助我们在系统水平上理解自然途径及其调控。在这里,我们引入了一个计算工具包 PathParser,它首次集成了多种重要的途径分析功能,包括热力学分析、基于动力学的蛋白质成本优化和稳健性分析。具体来说,PathParser 可以通过最小化最热力学不利反应的吉布斯自由能来优化途径的驱动力。此外,它可以根据反应热力学和酶动力学计算支持代谢通量所需的最小酶蛋白成本,并评估途径稳定性和通量对酶浓度扰动的响应。在对模型蓝藻集胞藻 6803 中的卡尔文-本森-巴斯汉姆循环和光呼吸途径的演示分析中,计算结果得到了实验蛋白质组学数据和代谢工程结果的证实。该工具包可能在其他微生物系统的代谢工程和系统生物学中有广泛的应用。

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