赖氨酸水平的提高提高了甲基养丁杆菌对丁酸生产的甲醇同化作用。

Jing Wang, Yang Liao, Jialun Qin, Chen Ma, Yuqi Jin, Xin Wang, Kequan Chen, Pingkai Ouyang
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引用次数: 0

摘要

背景:甲醇是一种很有前途的非食品发酵底物,作为糖的替代原料,用于生物基生产增值化学品,已引起越来越多的兴趣。甲基营养型Butyribacterium methylotrophicum是一种甲基营养型醋酸细菌,是一种很有前途的吸收甲醇并结合CO2固定生产丁酸等有机酸的宿主。虽然已经确定了B. methylotrophicum的甲醇利用途径,但目前对其调控靶点知之甚少,限制了合理的工程设计以提高甲醇利用。结果:在本研究中,我们发现玉米浸泡液(CSL)作为共底物可以显著促进甲基营养菌对甲醇的同化。进一步的研究表明,高水平的赖氨酸是提高甲醇利用率的原因。通过转录组分析,我们提出了赖氨酸通过调节NikABCDE和FhuBCD转运蛋白来改善甲基化的潜在机制,这两种转运蛋白都参与甲醇同化酶所必需的辅因子的摄取。过表达NikABCDE或FhuBCD操纵子也证实了甲基化改善。最后,对赖氨酸的新合成途径进行了进一步的工程设计,使甲基营养菌的甲醇利用率和丁酸产量分别提高了63.2%和79.7%。对培养基进行优化,最终甲醇丁酸产率为3.69 g/L,产率为76.3%,为目前报道的最高水平。结论:本研究揭示了一种调节甲基营养菌赖氨酸对甲醇同化的新机制,并对其进行改造,以提高甲醇向丁酸的生物转化,最终合成了迄今为止报道的甲基营养菌中最高的丁酸滴度。此外,我们的工作代表了甲基养丙酮菌工程技术在提高c1化合物利用率方面的进一步进展。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Increasing lysine level improved methanol assimilation toward butyric acid production in Butyribacterium methylotrophicum.

Increasing lysine level improved methanol assimilation toward butyric acid production in Butyribacterium methylotrophicum.

Increasing lysine level improved methanol assimilation toward butyric acid production in Butyribacterium methylotrophicum.

Increasing lysine level improved methanol assimilation toward butyric acid production in Butyribacterium methylotrophicum.

Background: Methanol, a promising non-food fermentation substrate, has gained increasing interest as an alternative feedstock to sugars for the bio-based production of value-added chemicals. Butyribacterium methylotrophicum, one of methylotrophic-acetogenic bacterium, is a promising host to assimilate methanol coupled with CO2 fixation for the production of organic acids, such as butyric acid. Although the methanol utilization pathway has been identified in B. methylotrophicum, little knowledge was currently known about its regulatory targets, limiting the rational engineering to improve methanol utilization.

Results: In this study, we found that methanol assimilation of B. methylotrophicum could be significantly improved when using corn steep liquor (CSL) as the co-substrate. The further investigation revealed that high level of lysine was responsible for enhanced methanol utilization. Through the transcriptome analysis, we proposed a potential mechanism by which lysine confers improved methylotrophy via modulating NikABCDE and FhuBCD transporters, both of which are involved in the uptake of cofactors essential for enzymes of methanol assimilation. The improved methylotrophy was also confirmed by overexpressing NikABCDE or FhuBCD operon. Finally, the de novo synthetic pathway of lysine was further engineered and the methanol utilization and butyric acid production of B. methylotrophicum were improved by 63.2% and 79.7%, respectively. After an optimization of cultivation medium, 3.69 g/L of butyric acid was finally achieved from methanol with a yield of 76.3%, the highest level reported to date.

Conclusion: This study revealed a novel mechanism to regulate methanol assimilation by lysine in B. methylotrophicum and engineered it to improve methanol bioconversion to butyric acid, culminating in the synthesis of the highest butyric acid titer reported so far in B. methylotrophicum. What's more, our work represents a further advancement in the engineering of methylotrophic-acetogenic bacterium to improve C1-compound utilization.

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