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基于代谢物的两种新型瘤胃球菌属种间共生互作增强丁酸盐和己酸盐的生成。

Metabolite-Based Mutualistic Interaction between Two Novel Clostridial Species from Pit Mud Enhances Butyrate and Caproate Production.

机构信息

Key Laboratory of Industrial Biotechnology of Ministry of Education, School of Biotechnology, Jiangnan Universitygrid.258151.a, Wuxi, People's Republic of China.

National Engineering Research Center for Cereal Fermentation and Food Biomanufacturing, Jiangnan Universitygrid.258151.a, Wuxi, People's Republic of China.

出版信息

Appl Environ Microbiol. 2022 Jul 12;88(13):e0048422. doi: 10.1128/aem.00484-22. Epub 2022 Jun 13.

Abstract

Pit mud microbial consortia play crucial roles in the formation of Chinese strong-flavor baijiu's key flavor-active compounds, especially butyric and caproic acids. , one of the abundant bacterial groups in pit mud, were recognized as important butyric and caproic acid producers. Research on the interactions of the pit mud microbial community mainly depends on correlation analysis at present. Interaction between and other microorganisms and its involvement in short/medium-chain fatty acid (S/MCFA) metabolism are still unclear. We previously found coculture of two clostridial strains isolated from pit mud, Clostridium fermenticellae JN500901 (901) and Novisyntrophococcus fermenticellae JN500902 (902), could enhance S/MCFA accumulation. Here, we investigated their underlying interaction mechanism through the combined analysis of phenotype, genome, and transcriptome. Compared to monocultures, coculture of 901 and 902 obviously promoted their growth, including shortening the growth lag phase and increasing biomass, and the accumulation of butyric acid and caproic acid. The slight effects of inoculation ratio and continuous passage on the growth and metabolism of coculture indicated the relative stability of their interaction. Transwell coculture and transcriptome analysis showed the interaction between 901 and 902 was accomplished by metabolite exchange, i.e., formic acid produced by 901 activated the Wood-Ljungdahl pathway of 902, thereby enhancing its production of acetic acid, which was further converted to butyric acid and caproic acid by 901 through reverse β-oxidation. This work demonstrates the potential roles of mutually beneficial interspecies interactions in the accumulation of key flavor compounds in pit mud. Microbial interactions played crucial roles in influencing the assembly, stability, and function of the microbial community. The metabolites of pit mud microbiota are the key to flavor formation of Chinese strong-flavor baijiu. So far, researches on the interactions of the pit mud microbial community have been mainly based on the correlation analysis of sequencing data, and more work needs to be performed to unveil the complicated interaction patterns. Here, we identified a material exchange-based mutualistic interaction system involving two fatty acid-producing clostridial strains ( JN500901 and JN500902) isolated from pit mud and systematically elucidated their interaction mechanism for promoting the production of butyric acid and caproic acid, the key flavor-active compounds of baijiu. Our findings provide a new perspective for understanding the complicated interactions of pit mud microorganisms.

摘要

窖泥微生物菌群在形成中国浓香型白酒的关键风味活性化合物方面发挥着至关重要的作用,尤其是丁酸和己酸。其中,芽孢杆菌是窖泥中丰富的细菌群体之一,被认为是丁酸和己酸的重要生产者。目前,对窖泥微生物群落的相互作用的研究主要依赖于相关性分析。然而,芽孢杆菌与其他微生物之间的相互作用及其在短/中链脂肪酸(S/MCFA)代谢中的参与情况尚不清楚。我们之前发现,从窖泥中分离的两株梭菌 Clostridium fermenticellae JN500901(901)和 Novisyntrophococcus fermenticellae JN500902(902)的共培养可以增强 S/MCFA 的积累。在这里,我们通过表型、基因组和转录组的综合分析来研究它们的潜在相互作用机制。与单培养相比,901 和 902 的共培养明显促进了它们的生长,包括缩短生长迟滞期和增加生物量,以及丁酸和己酸的积累。共培养物接种比例和连续传代对其生长和代谢的微小影响表明它们相互作用的相对稳定性。转瓶共培养和转录组分析表明,901 和 902 之间的相互作用是通过代谢物交换完成的,即 901 产生的甲酸激活了 902 的 Wood-Ljungdahl 途径,从而增强了其乙酸的产生,然后通过反向β-氧化由 901 将其进一步转化为丁酸和己酸。这项工作证明了互利的种间相互作用在窖泥中关键风味化合物积累中的潜在作用。微生物相互作用在影响微生物群落的组装、稳定性和功能方面起着关键作用。窖泥微生物群的代谢物是中国浓香型白酒风味形成的关键。到目前为止,对窖泥微生物群落相互作用的研究主要基于测序数据的相关性分析,还需要开展更多的工作来揭示复杂的相互作用模式。在这里,我们鉴定了一个涉及两个从窖泥中分离的产脂肪酸梭菌(JN500901 和 JN500902)的基于物质交换的互利共生系统,并系统地阐明了它们促进丁酸和己酸产生的相互作用机制,丁酸和己酸是白酒的关键风味活性化合物。我们的发现为理解窖泥微生物的复杂相互作用提供了新的视角。

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