工程化脂肪亚罗桿菌和大肠杆菌全细胞联合体从烷烃到α,ω-二胺的一锅生物催化途径。

IF 3.7 2区 生物学 Q1 BIOCHEMICAL RESEARCH METHODS ACS Synthetic Biology Pub Date : 2024-06-24 DOI:10.1021/acssynbio.4c00273
Ye Chan Kim, Hee-Wang Yoo, Beom Gi Park, Sharad Sarak, Ji-Sook Hahn, Byung-Gee Kim, Hyungdon Yun
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引用次数: 0

摘要

经过代谢工程改造的微生物联合体可作为一个前景广阔的生产平台,供应聚酰胺单体。迄今为止,由于正构烷烃的惰性和整个合成途径的复杂性,从正构烷烃中生物合成长链 α、ω-二胺具有挑战性。我们将工程化的脂肪溶解蓍草菌(Yarrowia lipolytica)模块与大肠杆菌(Escherichia coli)模块相结合,获得了一个混合菌株微生物联合体,该联合体可催化正构烷烃向相应的α,ω-二胺的高效生物转化。在构建的脂肪溶解酵母工程菌株(YALI10)中,负责β氧化的两个基因和负责脂肪醛过氧化的五个基因被删除。这种新构建的表达转氨酶(TA)的 YALI10 菌株可从 10 mM 正十二烷中产生 0.2 mM 1,12-十二烷二胺(40.1 mg/L)。由用于氧化正构烷烃(OM)的脂肪溶解酵母菌株和表达醛还原酶(AHR)和转氨酶(TA)的大肠杆菌氨化模块(AM)组成的微生物联合体可将 10 mM 正十二烷中 1,12-二胺的产量提高到 1.95 mM(391 mg/L)。最后,将表达羧酸还原酶(CAR)和 sfp 磷酸泛硫乙烯基转移酶的大肠杆菌还原模块(RM)与 OM 和 AM 结合使用,通过催化将不需要的 1,12-二酸还原成 1,12-二醇,再经过氨化反应生成目标产物 1,12-二胺,从而进一步提高了 1,12-二胺的产量。这种新构建的混合菌株联合体由一个罐中的三个模块组成,能从 10 mM 正十二烷中产生 4.1 mM(41%;816 mg/L)的 1,12-二氨基十二烷。本文报告的全细胞联合菌株为从相应的正烷烃中生物合成各种α,ω-二胺(C8、C10、C12 和 C14)提供了一种优雅的 "绿色 "替代方法。
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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One-Pot Biocatalytic Route from Alkanes to α,ω-Diamines by Whole-Cell Consortia of Engineered Yarrowia lipolytica and Escherichia coli.

Metabolically engineered microbial consortia can contribute as a promising production platform for the supply of polyamide monomers. To date, the biosynthesis of long-chain α,ω-diamines from n-alkanes is challenging because of the inert nature of n-alkanes and the complexity of the overall synthesis pathway. We combined an engineered Yarrowia lipolytica module with Escherichia coli modules to obtain a mixed strain microbial consortium that could catalyze an efficient biotransformation of n-alkanes into corresponding α,ω-diamines. The engineered Y. lipolytica strain was constructed (YALI10) wherein the two genes responsible for β-oxidation and the five genes responsible for the overoxidation of fatty aldehydes were deleted. This newly constructed YALI10 strain expressing transaminase (TA) could produce 0.2 mM 1,12-dodecanediamine (40.1 mg/L) from 10 mM n-dodecane. The microbial consortia comprising engineered Y. lipolytica strains for the oxidation of n-alkanes (OM) and an E. coli amination module (AM) expressing an aldehyde reductase (AHR) and transaminase (TA) improved the production of 1,12-diamine up to 1.95 mM (391 mg/L) from 10 mM n-dodecane. Finally, combining the E. coli reduction module (RM) expressing a carboxylic acid reductase (CAR) and an sfp phosphopantetheinyl transferase with OM and AM further improved the production of 1,12-diamine by catalyzing the reduction of undesired 1,12-diacids into 1,12-diols, which further undergo amination to give 1,12-diamine as the target product. This newly constructed mixed strain consortium comprising three modules in one pot gave 4.1 mM (41%; 816 mg/L) 1,12-diaminododecane from 10 mM n-dodecane. The whole-cell consortia reported herein present an elegant "greener" alternative for the biosynthesis of various α,ω-diamines (C8, C10, C12, and C14) from corresponding n-alkanes.

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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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