Exergy and exergy cost analysis of biochemical networks in living systems far from equilibrium

Assal Selma, F. Malfatti, M. Giani, M. Reini
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Abstract

Whilst humanity has reached a high level of technological development, finding efficient substitutes to petroleum energy is a challenging task. In this context, metabolically engineered microorganisms are used in biomass production. Considering the availability of data in genomic and metabolic fronts, Escherichia.Coli is one of the primary options for biofuel production, which could be later exploited as a ‘solo’ energy source, or coupled with nowadays available fuels. To survive, an organism must provide an amount of exergy greater than the exergy required to process equilibrium operations. Therefore, extra exergy amounts are needed for a living system to accomplish production, growth and evolution in time, as the above mentioned process is highly irreversible. This paper reviews the available studies on exergy analysis and exergy-cost theory-ECT application, along with the use of flux balance analysis-FBA and flux variability analysis-FVA, as a tool for gaining biological insights. The paper is structured as the following; first, a brief description of exergy analysis and the exergy-cost theory is presented. Second, the exergy analysis application on living cells is discussed through introducing exergy analysis of metabolic networks. Thirdly, the application on E.Coli is explained, highlighting its potential role in biofuel production. Finally, an approach, applied within a current PhD research project regarding the application of the exergy analysis to a generic metabolic network is introduced. In this approach, the exergy costs associated with all the flows present in the targeted network are calculated, according to the ECT. The perspective is to use the exergy cost information for defining additional constraints in the FBA of the metabolic network. Which could provide better insight about organisms and identify directions for the optimization of biomass production, and the enhancement of biofuel use.
远离平衡的生命系统中生化网络的能量和能量成本分析
虽然人类已经达到了很高的科技发展水平,但寻找石油能源的有效替代品是一项具有挑战性的任务。在这种情况下,代谢工程微生物被用于生物质生产。考虑到基因组和代谢前沿数据的可用性,埃希菌。大肠杆菌是生物燃料生产的主要选择之一,它可以作为一种“单独”的能源来开发,或者与目前可用的燃料结合使用。为了生存,生物体必须提供比平衡运作所需的能量更大的能量。因此,一个生命系统需要额外的能量才能及时完成生产、生长和进化,因为上述过程是高度不可逆的。本文综述了用能分析和用能成本理论- ect应用的现有研究,以及通量平衡分析- fba和通量变异性分析- fva的使用,作为获得生物学见解的工具。本文的结构如下:首先,简要介绍了用能分析和用能成本理论。其次,通过引入代谢网络的能耗分析,探讨了能耗分析在活细胞中的应用。第三,阐述了其在大肠杆菌上的应用,强调了其在生物燃料生产中的潜在作用。最后,介绍了一种方法,应用于当前的博士研究项目中,该项目涉及将能量分析应用于一般代谢网络。在这种方法中,根据ECT计算与目标网络中存在的所有流相关的能源成本。这个观点是使用能量成本信息来定义代谢网络FBA中的附加约束。这可以更好地了解生物,为优化生物质生产和提高生物燃料的使用确定方向。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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