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Energy coupling in Saccharomyces cerevisiae: selected opportunities for metabolic engineering. [Review]

机译:酿酒酵母中的能量耦合:代谢工程的选定机会。 [评论]

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摘要

Free-energy (ATP) conservation during product formation is crucial for the maximum product yield that can be obtained, but often overlooked in metabolic engineering strategies. Product pathways that do not yield ATP or even demand input of free energy (ATP) require an additional pathway to supply the ATP needed for product formation, cellular maintenance, and/or growth. On the other hand, product pathways with a high ATP yield may result in excess biomass formation at the expense of the product yield. This mini-review discusses the importance of the ATP yield for product formation and presents several opportunities for engineering free-energy (ATP) conservation, with a focus on sugar-based product formation by Saccharomyces cerevisiae. These engineering opportunities are not limited to the metabolic flexibility within S.[NON-BREAKING SPACE]cerevisiae itself, but also expression of heterologous reactions will be taken into account. As such, the diversity in microbial sugar uptake and phosphorylation mechanisms, carboxylation reactions, product export, and the flexibility of oxidative phosphorylation via the respiratory chain and H(+) -ATP synthase can be used to increase or decrease free-energy (ATP) conservation. For product pathways with a negative, zero or too high ATP yield, analysis and metabolic engineering of the ATP yield of product formation will provide a promising strategy to increase the product yield and simplify process conditions. Copyright 2012 Federation of European Microbiological Societies. Published by Blackwell Publishing Ltd. All rights reserved.
机译:产物形成过程中的自由能(ATP)守恒对于可获得的最大产物收率至关重要,但在代谢工程策略中常常被忽略。不产生ATP甚至不需要输入自由能(ATP)的产品途径都需要一条额外的途径来提供产品形成,细胞维持和/或生长所需的ATP。另一方面,具有高ATP产量的产品途径可能导致过多的生物质形成,但以产品产量为代价。这份小型回顾讨论了ATP产量对产品形成的重要性,并提出了一些节约工程自由能(ATP)的机会,重点是酿酒酵母基于糖的产品形成。这些工程机会不仅限于酿酒酵母本身内的代谢灵活性,而且还将考虑异源反应的表达。因此,微生物糖的摄取和磷酸化机制,羧化反应,产物出口以及通过呼吸链和H(+)-ATP合酶的氧化磷酸化的灵活性可用于增加或减少自由能(ATP)保护。对于ATP产量为负,零或过高的产品途径,对产品形成过程中ATP产量的分析和代谢工程化将为提高产品产量和简化工艺条件提供有希望的策略。版权所有2012欧洲微生物学会联合会。由布莱克韦尔出版有限公司出版。保留所有权利。

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