Microbial engineering for the production of C2–C6 organic acids

IF 10.6 1区 化学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY
Yang Li , Shujie Yang , Danlei Ma , Wei Song , Cong Gao , Liming Liu , Xiulai Chen
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引用次数: 13

Abstract

Covering: up to the end of 2020

Organic acids, as building block compounds, have been widely used in food, pharmaceutical, plastic, and chemical industries. Until now, chemical synthesis is still the primary method for industrial-scale organic acid production. However, this process encounters some inevitable challenges, such as depletable petroleum resources, harsh reaction conditions and complex downstream processes. To solve these problems, microbial cell factories provide a promising approach for achieving the sustainable production of organic acids. However, some key metabolites in central carbon metabolism are strictly regulated by the network of cellular metabolism, resulting in the low productivity of organic acids. Thus, multiple metabolic engineering strategies have been developed to reprogram microbial cell factories to produce organic acids, including monocarboxylic acids, hydroxy carboxylic acids, amino carboxylic acids, dicarboxylic acids and monomeric units for polymers. These strategies mainly center on improving the catalytic efficiency of the enzymes to increase the conversion rate, balancing the multi-gene biosynthetic pathways to reduce the byproduct formation, strengthening the metabolic flux to promote the product biosynthesis, optimizing the metabolic network to adapt the environmental conditions and enhancing substrate utilization to broaden the substrate spectrum. Here, we describe the recent advances in producing C2–C6 organic acids by metabolic engineering strategies. In addition, we provide new insights as to when, what and how these strategies should be taken. Future challenges are also discussed in further advancing microbial engineering and establishing efficient biorefineries.

Abstract Image

生产C2-C6有机酸的微生物工程
涵盖:截至2020年底有机酸作为基本成分化合物已广泛应用于食品、制药、塑料、化工等行业。迄今为止,化学合成仍是工业规模有机酸生产的主要方法。然而,该工艺也面临着一些不可避免的挑战,如石油资源的枯竭、反应条件的苛刻以及下游工艺的复杂等。为了解决这些问题,微生物细胞工厂为实现有机酸的可持续生产提供了一条很有前途的途径。然而,中心碳代谢中的一些关键代谢物受到细胞代谢网络的严格调控,导致有机酸的生产率较低。因此,多种代谢工程策略已经被开发出来,以重新编程微生物细胞工厂生产有机酸,包括单羧酸、羟基羧酸、氨基羧酸、二羧酸和聚合物的单体单位。这些策略主要集中在提高酶的催化效率以提高转化率,平衡多基因生物合成途径以减少副产物的形成,加强代谢通量以促进产物的生物合成,优化代谢网络以适应环境条件,提高底物利用率以拓宽底物谱。本文介绍了利用代谢工程技术生产C2-C6有机酸的最新进展。此外,我们提供了新的见解,何时,什么和如何采取这些战略。未来的挑战还讨论了进一步推进微生物工程和建立高效的生物精炼厂。
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来源期刊
Natural Product Reports
Natural Product Reports 化学-生化与分子生物学
CiteScore
21.20
自引率
3.40%
发文量
127
审稿时长
1.7 months
期刊介绍: Natural Product Reports (NPR) serves as a pivotal critical review journal propelling advancements in all facets of natural products research, encompassing isolation, structural and stereochemical determination, biosynthesis, biological activity, and synthesis. With a broad scope, NPR extends its influence into the wider bioinorganic, bioorganic, and chemical biology communities. Covering areas such as enzymology, nucleic acids, genetics, chemical ecology, carbohydrates, primary and secondary metabolism, and analytical techniques, the journal provides insightful articles focusing on key developments shaping the field, rather than offering exhaustive overviews of all results. NPR encourages authors to infuse their perspectives on developments, trends, and future directions, fostering a dynamic exchange of ideas within the natural products research community.
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