Prenol production in a microbial host via the “Repass” Pathways

IF 6.8 1区 生物学 Q1 BIOTECHNOLOGY & APPLIED MICROBIOLOGY Metabolic engineering Pub Date : 2025-03-01 Epub Date: 2025-01-25 DOI:10.1016/j.ymben.2025.01.009
David N. Carruthers , Isaac Donnell , Eric Sundstrom , Jay D. Keasling , Taek Soon Lee
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Abstract

Prenol and isoprenol are promising advanced biofuels and serve as biosynthetic precursors for pharmaceuticals, fragrances, and other industrially relevant compounds. Despite engineering improvements that circumvent intermediate cytotoxicity and lower energy barriers, achieving high titer ‘mevalonate (MVA)-derived’ prenol has remained elusive. Difficulty in selective prenol production stems from the necessary isomerization of isopentenyl diphosphate (IPP) to dimethylallyl diphosphate (DMAPP) as well as the intrinsic toxicity of these diphosphate precursors. Here, the expression of specific isopentenyl monophosphate kinases with model-guided enzyme substitution of diphosphate isomerases and phosphatases enabled selective cycling of monophosphates and diphosphates, dramatically improving prenol titers and selectivity in Escherichia coli. Pairing this approach with the canonical MVA pathway resulted in 300 mg/L prenol at a 30:1 ratio with isoprenol. Further pairing with the “IPP-Bypass” pathway resulted in 526 mg/L prenol at a 72:1 ratio with isoprenol, the highest and purest MVA-derived prenol titer to date. Additionally, modifying this “IPP-Repass” for DMAPP production and coexpressing the prenyltransferase acPT1 yielded 48.3 mg/L of the potential therapeutic precursor drupanin from p-coumarate. These novel repass pathways establish a unique strategy for tuning diphosphate precursors to drive isoprenoid biosynthesis and prenylation reactions.
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通过“重传”途径在微生物宿主中产生丙烯醇。
戊二醇和异戊二醇是很有前途的先进生物燃料,可以作为药物、香料和其他工业相关化合物的生物合成前体。尽管工程上的改进绕过了中间细胞毒性和较低的能量屏障,但获得高滴度的甲羟戊酸(MVA)衍生的戊醇仍然是难以捉摸的。二磷酸异戊烯基(IPP)必须异构化为二磷酸二甲基烯基(DMAPP),以及这些二磷酸前体的内在毒性,是选择性制备戊烯基醇的困难。在这里,通过模型引导的二磷酸异构酶和磷酸酶的酶替代,特异性异戊烯基单磷酸激酶的表达实现了单磷酸和二磷酸的选择性循环,显著提高了大肠杆菌中的丙烯醇滴度和选择性。将这种方法与典型的MVA途径配对,以30:1的比例产生300 mg/L的丙烯醇和异戊二醇。进一步与“IPP-Bypass”途径配对,得到526 mg/L的丙烯醇与异戊二醇的比例为72:1,这是迄今为止最高和最纯的mva衍生的丙烯醇滴度。此外,修改“IPP-Repass”以生产DMAPP并共表达戊烯基转移酶acPT1,从对香豆酸酯中获得48.3 mg/L的潜在治疗前体核糖素。这些新的重传途径建立了一种独特的策略来调节二磷酸前体来驱动类异戊二烯的生物合成和前置化反应。
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
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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