Microbial Production of Nicotinamide Mononucleotide: Key Enzymes Discovery, Host Cells Selection, and Pathways Design and Optimization.

IF 3.7 2区 生物学 Q1 BIOCHEMICAL RESEARCH METHODS
ACS Synthetic Biology Pub Date : 2025-05-16 Epub Date: 2025-04-16 DOI:10.1021/acssynbio.5c00038
Shuyi Xing, Xiulong Kang, Rui Wang, Chengqiang Wang, Yanjun Wang, Xiaoming Bao, Jianzhi Zhao
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引用次数: 0

Abstract

As an important bioactive substance in cells, nicotinamide mononucleotide (NMN) has been proven to play an important role in antiaging, treatment of neurodegenerative diseases, and cardioprotection. It presents a high potential for application in the research fields of functional foods, cosmetics, healthcare products, and active pharmaceuticals. With the increased demand, whether NMN can achieve large-scale industrial production has been a wide concern. The chemical synthesis method of NMN mainly faces the problems of separation, purification, and complex process control; in contrast, biosynthesis methods such as microbial fermentation and enzyme catalysis are considered to be the mainstream of the future industrial production of NMN due to the advantages of environmental friendliness, high efficiency, and simple separation. This review first describes the physiological functions of NMN and the related areas of its applications. Subsequently, it focuses on the research progress on different synthetic pathways of NMN in biosynthetic approaches, mining and modification of key enzymes, chassis cell design and optimization, and whole-cell catalysis. Meanwhile, the regulatory strategies, methods, and process control of the microbial synthesis of NMN are also elaborated, and the synthesis efficiencies of different chassis cells are systematically compared. Finally, this review summarizes the existing problems and challenges of microbial synthesis of NMN and proposes future strategies and directions to address these issues. This work provides technical references and a theoretical basis for researching efficient NMN microbial synthesis and application.

烟酰胺单核苷酸的微生物生产:关键酶的发现,宿主细胞的选择,途径的设计和优化。
烟酰胺单核苷酸(nicotinamide mononucleotide, NMN)是细胞中重要的生物活性物质,在抗衰老、治疗神经退行性疾病、保护心脏等方面具有重要作用。在功能食品、化妆品、保健品、活性药物等研究领域具有很大的应用潜力。随着需求的增加,NMN能否实现大规模工业化生产受到了广泛关注。NMN的化学合成方法主要面临分离、纯化、复杂过程控制等问题;相比之下,微生物发酵和酶催化等生物合成方法因其环境友好、效率高、分离简单等优点被认为是未来NMN工业生产的主流。本文首先介绍了NMN的生理功能及其在相关领域的应用。随后重点介绍了NMN不同合成途径在生物合成途径、关键酶挖掘与修饰、底盘细胞设计与优化、全细胞催化等方面的研究进展。同时阐述了微生物合成NMN的调控策略、方法和过程控制,并系统比较了不同基质细胞的合成效率。最后,本文总结了微生物合成NMN存在的问题和挑战,并提出了未来解决这些问题的策略和方向。本工作为研究高效的NMN微生物合成及应用提供了技术参考和理论基础。
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
CiteScore
8.00
自引率
10.60%
发文量
380
审稿时长
6-12 weeks
期刊介绍: The journal is particularly interested in studies on the design and synthesis of new genetic circuits and gene products; computational methods in the design of systems; and integrative applied approaches to understanding disease and metabolism. Topics may include, but are not limited to: Design and optimization of genetic systems Genetic circuit design and their principles for their organization into programs Computational methods to aid the design of genetic systems Experimental methods to quantify genetic parts, circuits, and metabolic fluxes Genetic parts libraries: their creation, analysis, and ontological representation Protein engineering including computational design Metabolic engineering and cellular manufacturing, including biomass conversion Natural product access, engineering, and production Creative and innovative applications of cellular programming Medical applications, tissue engineering, and the programming of therapeutic cells Minimal cell design and construction Genomics and genome replacement strategies Viral engineering Automated and robotic assembly platforms for synthetic biology DNA synthesis methodologies Metagenomics and synthetic metagenomic analysis Bioinformatics applied to gene discovery, chemoinformatics, and pathway construction Gene optimization Methods for genome-scale measurements of transcription and metabolomics Systems biology and methods to integrate multiple data sources in vitro and cell-free synthetic biology and molecular programming Nucleic acid engineering.
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