食品科学 ›› 2026, Vol. 47 ›› Issue (16): 134-144.doi: 10.7506/spkx1002-6630-20260224-131

• 生物工程 • 上一篇    下一篇

浓香型窖泥厌氧模拟发酵过程中有机酸与微生物群落的动态变化及己酸代谢途径的多组学解析

龚圆,谢军,卫春会,易卓林,任志强   

  1. (1.四川轻化工大学?酿酒科学与技术四川省重点实验室,四川?宜宾 644000;2.中国科学院成都生物研究所?农业微生物制剂四川省重点实验室,四川?成都 610213)
  • 出版日期:2026-08-25 发布日期:2026-09-03
  • 基金资助:
    酿酒科学与技术四川省重点实验室开放课题重点基础研究项目(NJ2025-01)

Multi-omics Analysis of the Dynamic Changes in Organic Acids and Microbial Communities and the Caproic Acid Metabolic Pathway during Simulated Anaerobic Fermentation of Nongxiangxing Baijiu Pit Mud

GONG Yuan, XIE Jun, WEI Chunhui, YI Zhuolin, REN Zhiqiang   

  1. (1. Brewing Science and Technology Key Laboratory of Sichuan Province, Sichuan University of Science and Engineering, Yibin 644000, China; 2. Agricultural Microbial Agents Key Laboratory of Sichuan Province, Chengdu Institute of Biology, Chinese Academy of Sciences, Chengdu 610213, China)
  • Online:2026-08-25 Published:2026-09-03

摘要: 为解析产己酸混菌体系的菌群协同代谢机制,本研究以浓香型窖泥为菌源构建高产己酸复合菌液,结合宏基因组学、宏转录组学、宏蛋白组学技术分析,系统探究发酵过程中微生物群落结构演替、功能基因表达与己酸合成的关联规律。结果表明:乳酸在前期快速消耗,乙酸持续积累,丁酸前期快速增长中期趋于稳定,己酸产量在前中期快速增长,在后期达到14.53 g/L并趋于稳定;发酵周期可分为3 个阶段,0~2 h为适应期,2~12 h为快速合成期,12~24 h为平稳期,2~12 h依靠接种物中已高表达的反向β-氧化酶系己酸快速合成,12~24 h底物几乎耗尽,己酸产量不再增长,菌群为适应底物匮乏发生脂代谢、碳水化合物代谢等通路的代谢重组;多组学共同检测到12 种核心功能菌属,包括Anaerococcus、Pseudoramibacter、Xylanivirga、Eubacterium、Peptoniphilus、Clostridium、Caproiciproducens等;通过物种功能贡献、代谢通路分析及三元Spearman相关性分析,明确菌群存在精准的功能分工:以Pseudoramibacter、Eubacterium、Tetragenococcus为代表,负责将乙酰-CoA转化为乙酰乙酰-CoA等中间体,为碳链延伸提供前体;Peptoniphilus专注于丁酰-CoA与丁酸的生成;Anaerococcus、Xylanivirga、Garciella、Clostridium、Finegoldia共同承担将丁酰-CoA延伸为己酰-CoA的核心催化与产物外排功能,是己酸合成的执行主体;Caproiciproducens通过脂肪酸生物合成途径独立合成己酸,形成功能分工明确的代谢网络。本研究从多组学角度完整揭示了产己酸复合菌液的时序演替规律与代谢功能网络,为深入理解己酸生物合成的微生物协同机制,以及后续发酵工艺的精准调控提供了扎实的理论依据与数据支撑。

关键词: 窖泥;己酸;混菌体系;菌群协同;多组学

Abstract: This study aimed to elucidate the synergistic metabolic mechanism of a caproic acid-producing microbial community from pit mud of nongxiangxing baijiu. Metagenomics, metatranscriptomics, and metaproteomics were integrated to systematically investigate the succession of microbial community structure, the expression of functional genes, and their correlation with caproic acid synthesis during the fermentation process. The results showed that lactic acid was rapidly consumed in the early stage, acetic acid accumulated continuously, butyric acid increased rapidly in the early stage and then stabilized in the middle stage, and the caproic acid yield rose rapidly in the early and middle stages, reaching 14.53 g/L, and stabilized in the late stage. The fermentation process could be divided into three stages: adaptation (0-2 h), rapid synthesis (2-12 h), and stationary (12-24 h). The rapid synthesis of caproic acid relied on the highly expressed reverse β-oxidation system in the inoculum; the substrates were almost exhausted at the stationary stage, leading to the cessation of caproic acid production, and the microbial community underwent reprogramming of lipid metabolism, carbohydrate metabolism, and other pathways to adapt to substrate deficiency. A total of 12 core functional genera were detected by multi-omics, including Anaerococcus, Pseudoramibacter, Xylanivirga, Eubacterium, Peptoniphilus, Clostridium, Caproiciproducens. Species functional contribution analysis, metabolic pathway analysis and Spearman correlation analysis showed a precise functional division of labor among the microbial community: Pseudoramibacter, Eubacterium and Tetragenococcus were responsible for converting acetyl-CoA into acetoacetyl-CoA and other intermediates to provide precursors for carbon chain elongation; Peptoniphilus predominantly produced butyryl-CoA and butyric acid; Anaerococcus, Xylanivirga, Garciella, Clostridium and Finegoldia jointly undertook the core catalytic reaction extending butyryl-CoA to hexanoyl-CoA and the function of product efflux, serving as the executors of caproic acid synthesis; Caproiciproducens synthesized caproic acid independently through the fatty acid biosynthesis pathway. Together, they formed a metabolic network with a clear functional division of labor. This study revealed the temporal succession pattern and metabolic functional network of the caproic acid-producing microbial consortium from a multi-omics perspective, providing a solid theoretical basis and data support for an in-depth understanding of the microbial synergistic mechanism of caproic acid biosynthesis and the precise regulation of the fermentation process.

Key words: pit mud; caproic acid; mixed microbial system; microbial synergy; multi-omics

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