Recent advances in synthetic biology toolkits and metabolic engineering of Ralstonia eutropha H16 for production of value-added chemicals.

IF 12.1 1区 工程技术 Q1 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
Ye Wang, Yao Tian, Dake Xu, Shaoan Cheng, Wen-Wei Li, Hao Song
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Abstract

Ralstonia eutropha H16, a facultative chemolithoautotrophic Gram-negative bacterium, demonstrates remarkable metabolic flexibility by utilizing either diverse organic substrates or CO2 as the sole carbon source, with H2 serving as the electron donor under aerobic conditions. The capacity of carbon and energy metabolism of R. eutropha H16 enabled development of synthetic biology technologies and strategies to engineer its metabolism for biosynthesis of value-added chemicals. This review firstly outlines the development of synthetic biology tools tailored for R. eutropha H16, including construction of expression vectors, regulatory elements, and transformation techniques. The availability of comprehensive omics data (i.e., transcriptomic, proteomic, and metabolomic) combined with the fully annotated genome sequence provides a robust genetic framework for advanced metabolic engineering. These advancements facilitate efficient reprogramming metabolic network of R. eutropha. The potential of R. eutropha as a versatile microbial platform for industrial biotechnology is further underscored by its ability to utilize a wide range of carbon sources for the production of value-added chemicals through both autotrophic and heterotrophic pathways. The integration of state-of-the-art genetic and genomic engineering tools and strategies with high cell-density fermentation processes enables engineered R. eutropha as promising microbial cell factories for optimizing carbon fluxes and expanding the portfolio of bio-based products.

富营养化Ralstonia eutropha H16合成生物学试剂盒及代谢工程研究进展。
Ralstonia eutropha H16是一种兼性化能自养革兰氏阴性菌,它可以利用多种有机底物或CO2作为唯一的碳源,在有氧条件下H2作为电子供体,表现出显著的代谢灵活性。富营养菌H16的碳和能量代谢能力使合成生物学技术和策略得以发展,以设计其代谢,用于生物合成增值化学品。本文首先综述了真菌菌H16合成生物学工具的研究进展,包括表达载体的构建、调控元件的构建和转化技术。综合组学数据(即转录组学、蛋白质组学和代谢组学)的可用性与完全注释的基因组序列相结合,为高级代谢工程提供了强大的遗传框架。这些进展有助于对真菌素代谢网络进行有效的重编程。真核霉作为工业生物技术的多功能微生物平台的潜力进一步强调了它通过自养和异养途径利用广泛的碳源生产增值化学品的能力。将最先进的遗传和基因组工程工具和策略与高密度细胞发酵过程相结合,使工程化的真核生菌成为优化碳通量和扩大生物基产品组合的有前途的微生物细胞工厂。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Biotechnology advances
Biotechnology advances 工程技术-生物工程与应用微生物
CiteScore
25.50
自引率
2.50%
发文量
167
审稿时长
37 days
期刊介绍: Biotechnology Advances is a comprehensive review journal that covers all aspects of the multidisciplinary field of biotechnology. The journal focuses on biotechnology principles and their applications in various industries, agriculture, medicine, environmental concerns, and regulatory issues. It publishes authoritative articles that highlight current developments and future trends in the field of biotechnology. The journal invites submissions of manuscripts that are relevant and appropriate. It targets a wide audience, including scientists, engineers, students, instructors, researchers, practitioners, managers, governments, and other stakeholders in the field. Additionally, special issues are published based on selected presentations from recent relevant conferences in collaboration with the organizations hosting those conferences.
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