Enhancing D-lactic acid production from methane through metabolic engineering of Methylomonas sp. DH-1.

IF 4.9 2区 生物学 Q1 BIOTECHNOLOGY & APPLIED MICROBIOLOGY Microbial Cell Factories Pub Date : 2025-03-25 DOI:10.1186/s12934-025-02695-z
Seungwoo Cha, Jae-Hwan Jo, Jong Kwan Lee, Wooyoung Park, Myounghoon Moon, Gwon Woo Park, Min-Sik Kim, Ji-Sook Hahn
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Abstract

Background: Methane is an abundant and low-cost carbon source with great potential for conversion into value-added chemicals. Methanotrophs, microorganisms that utilize methane as their sole carbon and energy source, present a promising platform for biotechnological applications. This study aimed to engineer Methylomonas sp. DH-1 to enhance D-LA production through metabolic pathway optimization during large-scale cultivation.

Results: In this study, we regulated the expression of D-lactate dehydrogenase (D-LDH) using a Ptac promoter with IPTG induction to mitigate the toxic effects of lactate accumulation. To further optimize carbon flow away from glycogen, the glgA gene was deleted. However, this modification led to growth inhibition, especially during scale-up, likely due to the accumulation of ADP-glucose caused by the rewired carbon flux under carbon-excess conditions. Deleting the glgC gene, which encodes glucose 1-phosphate adenylyltransferase, alleviated this issue. The final optimized strain, JHM805, achieved a D-LA production of 6.17 g/L in a 5-L bioreactor, with a productivity of 0.057 g/L/h, marking a significant improvement in D-LA production from methane.

Conclusions: The metabolic engineering strategies employed in this study, including the use of an inducible promoter and alleviation of ADP-glucose accumulation toxicity, successfully enhanced the ability of the strain to produce D-LA from methane. Furthermore, optimizing the bioreactor fermentation process through methane and nitrate supplementation resulted in a significant increase in both the titer and productivity, exceeding previously reported values.

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通过甲基单胞菌 DH-1 的代谢工程提高甲烷中 D-乳酸的产量。
背景:甲烷是一种储量丰富、成本低廉的碳源,具有转化为高附加值化学品的巨大潜力。甲烷氧化菌是一种利用甲烷作为唯一碳源和能量来源的微生物,它为生物技术的应用提供了一个很有前景的平台。本研究旨在通过优化甲基单胞菌DH-1在大规模培养过程中的代谢途径来提高D-LA的产量。结果:在本研究中,我们使用IPTG诱导的Ptac启动子调节d -乳酸脱氢酶(D-LDH)的表达,以减轻乳酸积累的毒性作用。为了进一步优化糖原的碳流,glgA基因被删除。然而,这种修饰导致生长抑制,特别是在放大过程中,可能是由于在碳过量条件下重新连接碳通量引起的adp -葡萄糖积累。删除编码葡萄糖1-磷酸腺苷基转移酶的glgC基因,缓解了这个问题。最终优化菌株JHM805在5-L生物反应器中D-LA产率为6.17 g/L,产率为0.057 g/L/h,显著提高了甲烷D-LA的产率。结论:本研究中采用的代谢工程策略,包括使用诱导启动子和减轻adp -葡萄糖积累毒性,成功地增强了菌株从甲烷中产生D-LA的能力。此外,通过添加甲烷和硝酸盐优化生物反应器发酵过程,导致滴度和生产率显著提高,超过先前报道的值。
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来源期刊
Microbial Cell Factories
Microbial Cell Factories 工程技术-生物工程与应用微生物
CiteScore
9.30
自引率
4.70%
发文量
235
审稿时长
2.3 months
期刊介绍: Microbial Cell Factories is an open access peer-reviewed journal that covers any topic related to the development, use and investigation of microbial cells as producers of recombinant proteins and natural products, or as catalyzers of biological transformations of industrial interest. Microbial Cell Factories is the world leading, primary research journal fully focusing on Applied Microbiology. The journal is divided into the following editorial sections: -Metabolic engineering -Synthetic biology -Whole-cell biocatalysis -Microbial regulations -Recombinant protein production/bioprocessing -Production of natural compounds -Systems biology of cell factories -Microbial production processes -Cell-free systems
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