Conversion of Carbon Monoxide to Chemicals Using Microbial Consortia.

4区 工程技术 Q2 Biochemistry, Genetics and Molecular Biology Advances in biochemical engineering/biotechnology Pub Date : 2022-01-01 DOI:10.1007/10_2021_180
Ivette Parera Olm, Diana Z Sousa
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引用次数: 3

Abstract

Syngas, a gaseous mixture of CO, H2 and CO2, can be produced by gasification of carbon-containing materials, including organic waste materials or lignocellulosic biomass. The conversion of bio-based syngas to chemicals is foreseen as an important process in circular bioeconomy. Carbon monoxide is also produced as a waste gas in many industrial sectors (e.g., chemical, energy, steel). Often, the purity level of bio-based syngas and waste gases is low and/or the ratios of syngas components are not adequate for chemical conversion (e.g., by Fischer-Tropsch). Microbes are robust catalysts to transform impure syngas into a broad spectrum of products. Fermentation of CO-rich waste gases to ethanol has reached commercial scale (by axenic cultures of Clostridium species), but production of other chemical building blocks is underexplored. Currently, genetic engineering of carboxydotrophic acetogens is applied to increase the portfolio of products from syngas/CO, but the limited energy metabolism of these microbes limits product yields and applications (for example, only products requiring low levels of ATP for synthesis can be produced). An alternative approach is to explore microbial consortia, including open mixed cultures and synthetic co-cultures, to create a metabolic network based on CO conversion that can yield products such as medium-chain carboxylic acids, higher alcohols and other added-value chemicals.

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利用微生物群将一氧化碳转化为化学品。
合成气是CO, H2和CO2的气体混合物,可以通过气化含碳材料产生,包括有机废物或木质纤维素生物质。生物基合成气转化为化工产品是循环生物经济发展的重要环节。一氧化碳在许多工业部门(如化工、能源、钢铁)也作为废气产生。通常,生物基合成气和废气的纯度水平很低和/或合成气组分的比例不足以进行化学转化(例如,通过费托法)。微生物是将不纯合成气转化为多种产品的强大催化剂。富含co的废气发酵成乙醇已达到商业规模(通过梭状芽胞杆菌的无菌培养),但其他化学成分的生产尚未得到充分探索。目前,羧营养醋酸菌的基因工程被用于增加合成气/CO的产品组合,但这些微生物有限的能量代谢限制了产品的产量和应用(例如,只能生产需要低水平ATP才能合成的产品)。另一种方法是探索微生物联合体,包括开放式混合培养和合成共培养,以CO转化为基础创建代谢网络,可以产生中链羧酸、高级醇和其他附加值化学品等产品。
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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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