谷氨酸棒状杆菌生产单萜烯平台的开发

IF 6.8 1区 生物学 Q1 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
Bridget A. Luckie , Meera Kashyap , Allison N. Pearson , Yan Chen , Yuzhong Liu , Luis E. Valencia , Alexander Carrillo Romero , Graham A. Hudson , Xavier B. Tao , Bryan Wu , Christopher J. Petzold , Jay D. Keasling
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引用次数: 0

摘要

单萜烯通常以其在香精和香料工业中的作用而闻名,并且在驱蚊剂和潜在的航空可再生燃料等其他用途上也受到关注。谷氨酸棒状杆菌是公认的安全微生物,50多年来一直是工业上年产百万吨规模氨基酸生物生产的首选微生物;然而,在谷氨酰胺中产生单萜的努力仍然相对有限。在这项研究中,我们通过开发和优化甲羟戊酸单萜平台,进一步扩大了谷氨酰胺的生物合成库。在我们的质粒设计迭代过程中,我们通过以甲羟戊酸为基础的旁路途径增加通量,测量异戊二醇产量作为单萜前体丰度的代理,并证明迄今为止报道的C. glutamicum的最高滴度为1504.6 mg/L。我们的设计还评估了主链、启动子和GPP合成酶同源来源对单萜产物滴度的影响。通过破坏类异戊二烯前体供应的竞争途径和实施双相生产系统以防止挥发,进一步改善了单萜烯的生产。在此平台上,我们获得了321.1 mg/L的香叶类化合物,723.6 mg/L的1,8-桉叶脑和227.8 mg/L的芳樟醇。此外,我们确定C. glutamum首先通过醛中间体氧化香叶醇,然后不对称还原为香茅醇。此外,我们证明了醛还原酶AdhC对无环单萜醛具有额外的底物混杂性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Development of Corynebacterium glutamicum as a monoterpene production platform

Monoterpenes are commonly known for their role in the flavors and fragrances industry and are also gaining attention for other uses like insect repellant and as potential renewable fuels for aviation. Corynebacterium glutamicum, a Generally Recognized as Safe microbe, has been a choice organism in industry for the annual million ton-scale bioproduction of amino acids for more than 50 years; however, efforts to produce monoterpenes in C. glutamicum have remained relatively limited. In this study, we report a further expansion of the C. glutamicum biosynthetic repertoire through the development and optimization of a mevalonate-based monoterpene platform. In the course of our plasmid design iterations, we increased flux through the mevalonate-based bypass pathway, measuring isoprenol production as a proxy for monoterpene precursor abundance and demonstrating the highest reported titers in C. glutamicum to date at 1504.6 mg/L. Our designs also evaluated the effects of backbone, promoter, and GPP synthase homolog origin on monoterpene product titers. Monoterpene production was further improved by disrupting competing pathways for isoprenoid precursor supply and by implementing a biphasic production system to prevent volatilization. With this platform, we achieved 321.1 mg/L of geranoids, 723.6 mg/L of 1,8-cineole, and 227.8 mg/L of linalool. Furthermore, we determined that C. glutamicum first oxidizes geraniol through an aldehyde intermediate before it is asymmetrically reduced to citronellol. Additionally, we demonstrate that the aldehyde reductase, AdhC, possesses additional substrate promiscuity for acyclic monoterpene aldehydes.

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来源期刊
Metabolic engineering
Metabolic engineering 工程技术-生物工程与应用微生物
CiteScore
15.60
自引率
6.00%
发文量
140
审稿时长
44 days
期刊介绍: Metabolic Engineering (MBE) is a journal that focuses on publishing original research papers on the directed modulation of metabolic pathways for metabolite overproduction or the enhancement of cellular properties. It welcomes papers that describe the engineering of native pathways and the synthesis of heterologous pathways to convert microorganisms into microbial cell factories. The journal covers experimental, computational, and modeling approaches for understanding metabolic pathways and manipulating them through genetic, media, or environmental means. Effective exploration of metabolic pathways necessitates the use of molecular biology and biochemistry methods, as well as engineering techniques for modeling and data analysis. MBE serves as a platform for interdisciplinary research in fields such as biochemistry, molecular biology, applied microbiology, cellular physiology, cellular nutrition in health and disease, and biochemical engineering. The journal publishes various types of papers, including original research papers and review papers. It is indexed and abstracted in databases such as Scopus, Embase, EMBiology, Current Contents - Life Sciences and Clinical Medicine, Science Citation Index, PubMed/Medline, CAS and Biotechnology Citation Index.
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