Exploring the De Novo NMN Biosynthesis as an Alternative Pathway to Enhance NMN Production.

IF 3.7 2区 生物学 Q1 BIOCHEMICAL RESEARCH METHODS ACS Synthetic Biology Pub Date : 2024-08-16 Epub Date: 2024-07-18 DOI:10.1021/acssynbio.4c00115
Pengju Wang, Yidan Ma, Ju Li, Junchang Su, Junxi Chi, Xingmiao Zhu, Xinna Zhu, Chunzhi Zhang, Changhao Bi, Xueli Zhang
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Abstract

Nicotinamide mononucleotide (NMN) serves as a precursor for NAD+ synthesis and has been shown to have positive effects on the human body. Previous research has predominantly focused on the nicotinamide phosphoribosyltransferase-mediated route (NadV-mediated route) for NMN biosynthesis. In this study, we have explored the de novo NMN biosynthesis route as an alternative pathway to enhance NMN production. Initially, we systematically engineered Escherichia coli to enhance its capacity for NMN synthesis and accumulation, resulting in a remarkable over 100-fold increase in NMN yield. Subsequently, we progressively enhanced the de novo NMN biosynthesis route to further augment NMN production. We screened and identified the crucial role of MazG in catalyzing the enzymatic cleavage of NAD+ to NMN. And the de novo NMN biosynthesis route was optimized and integrated with the NadV-mediated NMN biosynthetic pathways, leading to an intracellular concentration of 844.10 ± 17.40 μM NMN. Furthermore, the introduction of two transporters enhanced the uptake of NAM and the excretion of NMN, resulting in NMN production of 1293.73 ± 61.38 μM. Finally, by engineering an E. coli strain with optimized PRPP synthetase, we achieved the highest NMN production, reaching 3067.98 ± 27.25 μM after 24 h of fermentation at the shake flask level. In addition to constructing an efficient E. coli cell factory for NMN production, our findings provide new insights into understanding the NAD+ salvage pathway and its role in energy metabolism within E. coli.

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探索新 NMN 生物合成作为提高 NMN 产量的替代途径。
烟酰胺单核苷酸(NMN)是合成 NAD+ 的前体,对人体有积极的作用。以往的研究主要集中于烟酰胺磷酸核糖转移酶介导的 NMN 生物合成途径(NadV 介导途径)。在本研究中,我们探索了新生 NMN 生物合成途径,作为提高 NMN 产量的替代途径。最初,我们对大肠杆菌进行了系统工程改造,以提高其 NMN 合成和积累能力,从而使 NMN 产量显著增加了 100 倍以上。随后,我们逐步增强了 NMN 的新生物合成途径,进一步提高了 NMN 产量。我们筛选并确定了 MazG 在催化 NAD+ 到 NMN 的酶裂解过程中的关键作用。我们优化了新的 NMN 生物合成途径,并将其与 NadV 介导的 NMN 生物合成途径相结合,使细胞内的 NMN 浓度达到 844.10 ± 17.40 μM。此外,两个转运体的引入增强了 NAM 的摄取和 NMN 的排泄,使 NMN 产量达到 1293.73 ± 61.38 μM。最后,通过设计具有优化的 PRPP 合成酶的大肠杆菌菌株,我们获得了最高的 NMN 产量,在摇瓶水平发酵 24 小时后达到 3067.98 ± 27.25 μM。除了构建一个生产 NMN 的高效大肠杆菌细胞工厂外,我们的研究结果还为了解大肠杆菌内的 NAD+ 挽救途径及其在能量代谢中的作用提供了新的见解。
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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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