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蓝藻中次生代谢的代谢通量表型分析

Metabolic flux phenotyping of secondary metabolism in cyanobacteria.

作者信息

Babele Piyoosh K, Srivastava Amit, Young Jamey D

机构信息

College of Agriculture, Rani Lakshmi Bai Central Agricultural University Jhansi, 284003, Uttar Pradesh, India.

University of Jyväskylä, Nanoscience Centre, Department of Biological and Environmental Science, 40014 Jyväskylä, Finland.

出版信息

Trends Microbiol. 2023 Nov;31(11):1118-1130. doi: 10.1016/j.tim.2023.05.005. Epub 2023 Jun 17.

Abstract

Cyanobacteria generate energy from photosynthesis and produce various secondary metabolites with diverse commercial and pharmaceutical applications. Unique metabolic and regulatory pathways in cyanobacteria present new challenges for researchers to enhance their product yields, titers, and rates. Therefore, further advancements are critically needed to establish cyanobacteria as a preferred bioproduction platform. Metabolic flux analysis (MFA) quantitatively determines the intracellular flows of carbon within complex biochemical networks, which elucidate the control of metabolic pathways by transcriptional, translational, and allosteric regulatory mechanisms. The emerging field of systems metabolic engineering (SME) involves the use of MFA and other omics technologies to guide the rational development of microbial production strains. This review highlights the potential of MFA and SME to optimize the production of cyanobacterial secondary metabolites and discusses the technical challenges that lie ahead.

摘要

蓝细菌通过光合作用产生能量,并产生各种具有不同商业和医药应用的次生代谢产物。蓝细菌独特的代谢和调控途径给研究人员提高其产物产量、滴度和速率带来了新的挑战。因此,迫切需要进一步取得进展,以将蓝细菌确立为首选的生物生产平台。代谢通量分析(MFA)定量测定复杂生化网络中碳的细胞内流动,这阐明了转录、翻译和变构调节机制对代谢途径的控制。系统代谢工程(SME)这一新兴领域涉及使用MFA和其他组学技术来指导微生物生产菌株的合理开发。本综述强调了MFA和SME在优化蓝细菌次生代谢产物生产方面的潜力,并讨论了未来面临的技术挑战。

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