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代谢组学驱动的1-丙醇生产限速步骤鉴定

Metabolomics-Driven Identification of the Rate-Limiting Steps in 1-Propanol Production.

作者信息

Ohtake Toshiyuki, Kawase Naoki, Pontrelli Sammy, Nitta Katsuaki, Laviña Walter A, Shen Claire R, Putri Sastia P, Liao James C, Fukusaki Eiichiro

机构信息

Department of Biotechnology, Graduate School of Engineering, Osaka University, Suita, Japan.

Department of Chemical and Biomolecular Engineering, University of California, Los Angeles, Los Angeles, CA, United States.

出版信息

Front Microbiol. 2022 Apr 14;13:871624. doi: 10.3389/fmicb.2022.871624. eCollection 2022.

Abstract

The concerted effort for bioproduction of higher alcohols and other commodity chemicals has yielded a consortium of metabolic engineering techniques to identify targets to enhance performance of engineered microbial strains. Here, we demonstrate the use of metabolomics as a tool to systematically identify targets for improved production phenotypes in . Gas chromatography/mass spectrometry (GC/MS) and ion-pair LC-MS/MS were performed to investigate metabolic perturbations in various 1-propanol producing strains. Two initial strains were compared that differ in the expression of the citramalate and threonine pathways, which hold a synergistic relationship to maximize production yields. While this results in increased productivity, no change in titer was observed when the threonine pathway was overexpressed beyond native levels. Metabolomics revealed accumulation of upstream byproducts, norvaline and 2-aminobutyrate, both of which are derived from 2-ketobutyrate (2KB). Eliminating the competing pathway by gene knockouts or improving flux through overexpression of glycolysis gene effectively increased the intracellular 2KB pool. However, the increase in 2KB intracellular concentration yielded decreased production titers, indicating toxicity caused by 2KB and an insufficient turnover rate of 2KB to 1-propanol. Optimization of alcohol dehydrogenase YqhD activity using an ribosome binding site (RBS) library improved 1-propanol titer (g/L) and yield (g/g of glucose) by 38 and 29% in 72 h compared to the base strain, respectively. This study demonstrates the use of metabolomics as a powerful tool to aid systematic strain improvement for metabolically engineered organisms.

摘要

为实现高级醇和其他商品化学品的生物生产而做出的协同努力,已经产生了一系列代谢工程技术,用于确定提高工程微生物菌株性能的靶点。在此,我们展示了代谢组学作为一种工具,用于系统地确定提高生产表型的靶点。采用气相色谱/质谱联用仪(GC/MS)和离子对液相色谱-串联质谱联用仪(LC-MS/MS)来研究各种产1-丙醇菌株中的代谢扰动。比较了两种初始菌株,它们在柠檬酸苹果酸途径和苏氨酸途径的表达上存在差异,这两条途径具有协同关系以实现产量最大化。虽然这提高了生产率,但当苏氨酸途径的表达超过天然水平时,滴度没有变化。代谢组学揭示了上游副产物正缬氨酸和2-氨基丁酸的积累,这两种副产物均来源于2-酮丁酸(2KB)。通过基因敲除消除竞争途径或通过糖酵解基因的过表达提高通量,有效地增加了细胞内2KB库。然而,细胞内2KB浓度的增加导致生产滴度降低,这表明2KB具有毒性,且2KB向1-丙醇的转化率不足。使用核糖体结合位点(RBS)文库优化乙醇脱氢酶YqhD的活性,与基础菌株相比,在72小时内分别将1-丙醇滴度(g/L)和产量(g/g葡萄糖)提高了38%和29%。本研究证明了代谢组学作为一种强大工具,有助于对代谢工程生物体进行系统的菌株改良。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5f92/9048197/ee6e1be6a234/fmicb-13-871624-g001.jpg

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