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用于强化二氧化碳固定的人工自养微生物开发的最新进展。

Recent Advances in Developing Artificial Autotrophic Microorganism for Reinforcing CO Fixation.

作者信息

Liang Bo, Zhao Yunkun, Yang Jianming

机构信息

Energy-rich Compounds Production by Photosynthetic Carbon Fixation Research Center, Qingdao Agricultural University, Qingdao, China.

Shandong Key Lab of Applied Mycology, College of Life Sciences, Qingdao Agricultural University, Qingdao, China.

出版信息

Front Microbiol. 2020 Nov 9;11:592631. doi: 10.3389/fmicb.2020.592631. eCollection 2020.

Abstract

With the goal of achieving carbon sequestration, emission reduction and cleaner production, biological methods have been employed to convert carbon dioxide (CO) into fuels and chemicals. However, natural autotrophic organisms are not suitable cell factories due to their poor carbon fixation efficiency and poor growth rate. Heterotrophic microorganisms are promising candidates, since they have been proven to be efficient biofuel and chemical production chassis. This review first briefly summarizes six naturally occurring CO fixation pathways, and then focuses on recent advances in artificially designing efficient CO fixation pathways. Moreover, this review discusses the transformation of heterotrophic microorganisms into hemiautotrophic microorganisms and delves further into fully autotrophic microorganisms (artificial autotrophy) by use of synthetic biological tools and strategies. Rapid developments in artificial autotrophy have laid a solid foundation for the development of efficient carbon fixation cell factories. Finally, this review highlights future directions toward large-scale applications. Artificial autotrophic microbial cell factories need further improvements in terms of CO fixation pathways, reducing power supply, compartmentalization and host selection.

摘要

为了实现碳封存、减排和清洁生产的目标,人们采用生物方法将二氧化碳(CO)转化为燃料和化学品。然而,天然自养生物由于其较差的碳固定效率和生长速率,并非合适的细胞工厂。异养微生物是很有前景的候选者,因为它们已被证明是高效生物燃料和化学品生产的底盘。本综述首先简要总结了六种天然存在的碳固定途径,然后重点介绍了人工设计高效碳固定途径的最新进展。此外,本综述讨论了将异养微生物转化为半自养微生物,并通过使用合成生物学工具和策略进一步深入研究完全自养微生物(人工自养)。人工自养的快速发展为高效碳固定细胞工厂的开发奠定了坚实基础。最后,本综述突出了大规模应用的未来方向。人工自养微生物细胞工厂在碳固定途径、减少电源供应、区室化和宿主选择方面需要进一步改进。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6aec/7680860/68f8f337569d/fmicb-11-592631-g001.jpg

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