食品科学 ›› 2026, Vol. 47 ›› Issue (14): 256-266.doi: 10.7506/spkx1002-6630-20260105-029

• 成分分析 • 上一篇    

基于宏基因组学的清香型白酒发酵过程中酯类物质形成规律

沈纪健,任宇婷,乔美灵,孙子羽,陈忠军,满都拉   

  1. (内蒙古农业大学食品科学与工程学院,内蒙古?呼和浩特 010018)
  • 发布日期:2026-08-24
  • 基金资助:
    内蒙古自然科学基金面上项目(2025MS03138);国家自然科学基金地区科学基金项目(32060533)

Metagenomics-Based Analysis of Formation Patterns of Ester Compounds during Fermentation of Qingxiangxing Baijiu

SHEN Jijian, REN Yuting, QIAO Meiling, SUN Ziyu, CHEN Zhongjun, Mandlaa   

  1. (College of Food Science and Engineering, Inner Mongolia Agricultural University, Hohhot 010018, China)
  • Published:2026-08-24

摘要: 本研究采用宏基因组学和顶空固相微萃取结合气相色谱-质谱联用技术分析清香型白酒发酵过程中4 种乙酯(乳酸乙酯、乙酸乙酯、丁酸乙酯和己酸乙酯)与微生物群落及酯合成酶基因变化规律。结果表明,除乳酸乙酯外,其他3 种酯在发酵前期快速积累(0~3 d),而乳酸乙酯则在第5天开始快速积累。根据微生物群落特征,发酵过程可分为两个阶段(0 d和3~28 d),Saccharomyces、Lactobacillus和Rhizopus属不仅是发酵前期的优势菌属,也是造成两个发酵阶段的差异物种。相关性分析发现,Saccharomyces和Lactobacillus属与乳酸乙酯间均存在显著相关性(P<0.05),Rhizopus属与乙酸乙酯间存在显著相关性(P<0.05)。基于京都基因与基因组百科全书注释结果发现,半缩醛脱氢酶、醇酰基转移酶和酯酶基因在整个发酵过程中占据优势地位。在发酵前期,半缩醛脱氢酶和醇酰基转移酶为优势酶类,二者也是造成两阶段差异的主要酶类。进一步通过物种贡献度分析发现,半缩醛脱氢酶类在发酵前期主要源于Leuconostoc和Weissella属,在发酵后期主要源于Lactobacillus属。醇酰基转移酶类在发酵前期主要源于Saccharomyces和Wickerhamomyces属,在发酵后期主要源于Lactobacillus和Kazachstania属。酯酶类在发酵前期主要来源于Pachysolen和Weissella属,在发酵后期主要来源于Lactobacillus、Kazachstania和Pachysolen属。基于以上结果推测Lactobacillus、Kazachstania、Rhizopus、Saccharomyces、Wickerhamomyces和Weissella属是参与酯类合成的主要微生物。相关性结果也表明乙酸乙酯与醇酰基转移酶间存在显著相关性(P<0.05),Saccharomyces、Wickerhamomyces、Lactobacillus和Kazachstania属可能主要利用醇酰基转移酶途径合成乙酸乙酯。

关键词: 宏基因组学;酯类物质;微生物群落;酶基因;发酵过程;变化规律

Abstract: In this study, metagenomics combined with headspace solid-phase microextraction-gas chromatography-mass spectrometry (HS-SPME-GC-MS) was employed to investigate the dynamic changes in four ethyl esters (ethyl lactate, ethyl acetate, ethyl butyrate, and ethyl caproate), microbial communities, and ester synthase-encoding genes during the fermentation of qingxiangxing baijiu. The results showed that ethyl acetate, ethyl butyrate, and ethyl caproate accumulated rapidly in the early stage of fermentation (0–3 days), while ethyl lactate started to accumulate rapidly on the 5th day. Based on the characteristics of microbial communities, the fermentation process could be divided into two stages (day 0 and days 3–28). Saccharomyces, Lactobacillus, and Rhizopus were not only the dominant genera in the early fermentation stage but also the differential genera between the two fermentation stages. Correlation analysis revealed that Saccharomyces and Lactobacillus were significantly correlated with ethyl lactate (P < 0.05), while Rhizopus was significantly correlated with ethyl acetate (P < 0.05). According to the results of Kyoto Encyclopedia of Genes and Genomes (KEGG) annotation, the genes encoding hemiacetal dehydrogenation, alcohol acetyltransferases, and esterase dominated throughout the fermentation process. In the early fermentation stage, hemiacetal dehydrogenases and alcohol acetyltransferases were the predominant enzymes, which were also primarily responsible for the differences between the two stages. Further analysis of species contribution indicated that hemiacetal dehydrogenases were mainly derived from Leuconostoc and Weissella in the early fermentation stage, whereas they were primarily sourced from Lactobacillus in the late fermentation stage. Alcohol acetyltransferases were mainly produced by Saccharomyces and Wickerhamomyces in the early fermentation stage, whereas they were primarily sourced from Lactobacillus and Kazachstania in the late fermentation stage. Esterases were mainly derived from the genera Pachysolen and Weissella during the early stage of fermentation, while they were predominantly produced by Lactobacillus, Kazachstania, and Pachysolen in the late fermentation stage. Based on the above results, it can be inferred that the genera Lactobacillus, Kazachstania, Rhizopus, Saccharomyces, Wickerhamomyces, and Weissella are the key microorganisms involved in ester synthesis. The results of correlation analysis also demonstrated a significant correlation between ethyl acetate and alcohol acetyltransferases (P < 0.05), and the genera Saccharomyces, Wickerhamomyces, Lactobacillus and Kazachstania were proposed to be the primary taxa responsible for ethyl acetate synthesis via the alcohol acetyltransferases pathway.

Key words: metagenomics; ester compounds; microbial community; enzyme-encoding genes; fermentation process; variation patterns

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