Key Laboratory of Carbohydrate Chemistry and Biotechnology, Ministry of Education, School of Biotechnology, Jiangnan University, Wuxi 214122, China.
Science Center for Future Foods, Jiangnan University, Wuxi 214122, China.
J Agric Food Chem. 2022 May 18;70(19):5849-5859. doi: 10.1021/acs.jafc.2c01252. Epub 2022 May 6.
5-Methyltetrahydrofolate (5-MTHF) is the predominant folate form in human plasma, which has been widely used as a nutraceutical. However, the microbial synthesis of 5-MTHF is currently inefficient, limiting green and sustainable 5-MTHF production. In this study, the Generally Regarded As Safe (GRAS) microorganism was engineered as the 5-MTHF production host. Three precursor supply modules were first optimized by modular engineering for strengthening the supply of guanosine-5-triphosphate (GTP) and -aminobenzoic acid (ABA). Next, the impact of genome-wide gene expression on 5-MTHF biosynthesis was evaluated using transcriptome analyses, which identified key genes for 5-MTHF production. The effects of potential genes on 5-MTHF synthesis were verified by observing the genes' up-regulated by strong promoter P and those down-regulated by inhibition through the clustered regularly interspaced short palindromic repeat interference (CRISPRi). Finally, a key gene for improved 5-MTHF biosynthesis, , was integrated into the genome of modular engineered strain B89 for its overexpression and facilitating efficient 5-MTHF synthesis, reaching 3.41 ± 0.10 mg/L with a productivity of 0.21 mg/L/h, which was the highest level achieved by microbial synthesis. The engineered 5-MTHF-producing developed in this work lays the foundation of further enhancing 5-MTHF production by microbial fermentation, which can be used for isolation and purification of 5-MTHF as food and nutraceutical ingredients.
5-甲基四氢叶酸(5-MTHF)是人体血浆中主要的叶酸形式,已被广泛用作营养保健品。然而,5-MTHF 的微生物合成目前效率低下,限制了绿色和可持续的 5-MTHF 生产。在这项研究中,通常被认为是安全的(GRAS)微生物被工程化为 5-MTHF 生产宿主。首先,通过模块化工程优化了三个前体供应模块,以加强鸟苷-5-三磷酸(GTP)和 -氨基苯甲酸(ABA)的供应。接下来,通过转录组分析评估了全基因组基因表达对 5-MTHF 生物合成的影响,鉴定了 5-MTHF 生产的关键基因。通过观察强启动子 P 上调和通过成簇规律间隔短回文重复干扰(CRISPRi)抑制下调的潜在基因,验证了潜在基因对 5-MTHF 合成的影响。最后,将一个提高 5-MTHF 生物合成的关键基因 ,整合到模块化工程菌株 B89 的基因组中进行过表达,以促进高效的 5-MTHF 合成,达到 3.41±0.10mg/L,比微生物合成的最高水平提高了 1.41±0.10mg/L/h。在这项工作中开发的工程化 5-MTHF 生产菌为通过微生物发酵进一步提高 5-MTHF 生产奠定了基础,可用于食品和营养保健品成分的 5-MTHF 分离和纯化。