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Systems metabolic engineering of Bacillus subtilis for efficient biosynthesis of 5-methyltetrahydrofolate

机译:枯草芽孢杆菌的系统代谢工程,用于5-甲基四氢酚的有效生物合成

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摘要

5-Methyltetrahydrofolate (5-MTHF) is the major form of folate in human plasma and is the only folate form that can penetrate the blood-brain barrier. It has been widely used for the prevention and treatment of various diseases. It is mainly produced by chemical synthesis. However, the low production rate cannot meet the increasing demand. In addition, chemical synthesis is potentially detrimental to the environment. Despite various microorganisms synthetizing 5-MTHF, an efficient 5-MTHF bioproduction approach is lacking because of the tight regulation of the 5-MTHF pathway and limited metabolic flux toward the folic acid pathway. In this study, the 5-MTHF synthetic pathway in Bacillus subtilis was systematically engineered to realize 5-MTHF accumulation and further improve 5-MTHF production. Specifically, the 5-MTHF synthesis pathway with dihydrofolate (DHF) as the precursor was strengthened to shift the metabolic flux to 5-MTHF biosynthesis by replacing the native yitJ gene with Escherichia coli metF, knockout of purU, and overexpressing dfrA. The intracellular level of 5-MTHF increased 26.4-fold, reaching 271.64 mu g/L. Next, the 5-MTHF precursor supply pathway was strengthened by co-overexpression of folC, pabB, folE, and yciA. This resulted in a 93.2-fold improvement of the 5-MTHF titer, which reached 960.27 mu g/L. Finally, the clustered regularly interspaced short palindromic repeats interference system was used to identify key genes in the competitive and catabolic pathways for repression to further shift the metabolic flux toward 5-MTHF biosynthesis. The repression of genes thyA (existing in the purine metabolic pathway), pheA (existing in the competitive metabolic pathway), trpE (existing in the competitive metabolic pathway), and panB (existing in the pantoate synthesis pathway) significantly increased the titer of 5-MTHF. By repressing the pheA gene, the 5-MTHF titer reached 1.58 mg/L, which was 153.8-fold that of the wild-type strain of B. subtilis 168. Through medium optimization, the 5-MTHF titer reached 1.78 mg/L, which was currently the highest titer of 5-MTHF in B. subtilis. Apart from the highest titer of 5-MTHF, the highest titer of total folates including 5-MTHF, 5-FTHF, folic acid, and THF could reach 3.31 mg/L, which was 8.5-fold that in B. subtilis. To the best of our knowledge, the 5-MTHF and total folate titers reported here are the highest using a Generally regarded as safe (GRAS) bacterium as the production host. Overall, this study provides a good starting point for further metabolic engineering to achieve efficient biosynthesis of 5-MTHF by GRAS bacteria.
机译:5-甲基四氢醇(5-MTHF)是人血浆中叶酸的主要形式,是唯一可以穿透血脑屏障的叶酸形式。它已被广泛用于预防和治疗各种疾病。它主要由化学合成生产。然而,低生产率不能满足日益增长的需求。此外,化学合成可能对环境有害。尽管合成了5-MHF的微生物,但由于5-MTHF途径的紧张调节和朝向叶酸途径有限的代谢通量,因此缺乏有效的5-MTHF生物制导方法。在本研究中,枯草芽孢杆菌的5-MHF合成途径被系统地设计成实现5-MMMF积聚,进一步改善5-MTHF生产。具体地,具有二氢脱液(DHF)作为前体的5mHF合成途径被加强通过用大肠杆菌MetF,敲除与过表达DFRA替换天然YITJ基因来将代谢通量移至5-MMHF生物合成。细胞内水平为5-mthf增加26.4倍,达到271.64μg/ l。接下来,通过Folc,Pabb,Fol和Ycia的共同过度表达强化5-MHF前体供应途径。这导致5-M型滴度的93.2倍,达到960.27μg/ l。最后,使用群集定期间隙的短语重复干扰系统用于识别竞争性和分解代谢途径中的关键基因,以进行抑制,以进一步将代谢通量朝向5-MTHF生物合成转移。抑制基因素(存在于嘌呤代谢途径中),PHEA(存在于竞争性代谢途径),TRPE(存在于竞争性代谢途径)和PANB(存在于Pantoate合成途径中)显着增加了5的滴度-mthf。通过压制PHEA基因,5-MHF滴度达到1.58mg / L,为B.枯草芽孢杆菌168的野生型菌株的153.8倍。通过中等优化,5-MMM滴度达到1.78 mg / L.这是目前B.枯草芽孢杆菌中的最高滴度为5-mthf。除了5-mthf的最高滴度之外,总叶片的最高滴度,包括5-mthf,5-fthf,叶酸和THF,可达到3.31 mg / L,在B.枯草芽孢杆菌中为8.5倍。据我们所知,这里报道的5-MTHF和总叶酸滴度是使用通常被认为是安全(GRAS)细菌作为生产主体的最高的。总体而言,该研究为进一步的代谢工程提供了良好的起点,以通过GRAS细菌实现5-MTHF的有效生物合成。

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