甲醇在微生物生长和生产中的好氧利用。

4区 工程技术 Q2 Biochemistry, Genetics and Molecular Biology
Volker F Wendisch, Gregor Kosec, Stéphanie Heux, Trygve Brautaset
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引用次数: 2

摘要

甲醇是一种还原的一碳化合物。它支持有氧甲基营养体的生长,这些甲基营养体通过电子传递链中的呼吸磷酸化从氧化还原等量物中获得ATP。值得注意的是,如果甲醇氧化依赖于nadd,如在甲醇芽孢杆菌中,甲醇线性氧化为二氧化碳可能产生三个还原的氧化还原当量。甲醇比葡萄糖具有更高的每碳还原度(6比4),因此,它是微生物生产还原目标化合物的理想碳源。然而,在RuMP或丝氨酸循环中,C-C键的形成是产生大分子的先决条件,需要ATP和/或还原的氧化还原等价物。此外,在甲醇分解代谢氧化过程中,热耗散和对氧气的高需求可能对发酵过程构成挑战。在本章中,我们总结了好氧甲醇利用的代谢途径、作为工业生产宿主的好氧甲基营养体、菌株工程和甲醇生物反应器工艺。此外,我们还提供技术和市场展望。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Aerobic Utilization of Methanol for Microbial Growth and Production.

Methanol is a reduced one-carbon (C1) compound. It supports growth of aerobic methylotrophs that gain ATP from reduced redox equivalents by respiratory phosphorylation in their electron transport chains. Notably, linear oxidation of methanol to carbon dioxide may yield three reduced redox equivalents if methanol oxidation is NAD-dependent as, e.g., in Bacillus methanolicus. Methanol has a higher degree of reduction per carbon than glucose (6 vs. 4), and thus, lends itself as an ideal carbon source for microbial production of reduced target compounds. However, C-C bond formation in the RuMP or serine cycle, a prerequisite for production of larger molecules, requires ATP and/or reduced redox equivalents. Moreover, heat dissipation and a high demand for oxygen during catabolic oxidation of methanol may pose challenges for fermentation processes. In this chapter, we summarize metabolic pathways for aerobic methanol utilization, aerobic methylotrophs as industrial production hosts, strain engineering, and methanol bioreactor processes. In addition, we provide technological and market outlooks.

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来源期刊
Advances in biochemical engineering/biotechnology
Advances in biochemical engineering/biotechnology 工程技术-生物工程与应用微生物
CiteScore
5.70
自引率
0.00%
发文量
29
期刊介绍: Advances in Biochemical Engineering/Biotechnology reviews actual trends in modern biotechnology. Its aim is to cover all aspects of this interdisciplinary technology where knowledge, methods and expertise are required for chemistry, biochemistry, microbiology, genetics, chemical engineering and computer science. Special volumes are dedicated to selected topics which focus on new biotechnological products and new processes for their synthesis and purification. They give the state-of-the-art of a topic in a comprehensive way thus being a valuable source for the next 3 - 5 years. It also discusses new discoveries and applications.
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