食品科学 ›› 2026, Vol. 47 ›› Issue (16): 113-124.doi: 10.7506/spkx1002-6630-20260202-007

• 生物工程 • 上一篇    下一篇

浓香型大曲源粟酒裂殖酵母JM2-5产酯功能的基因组学与比较基因组学分析

刘春艳,罗浩,刘杰,向心悦,张楷正,邹伟   

  1. (1.四川轻化工大学食品与酿酒工程学院,四川?宜宾 644005;2.安徽临水酒业有限公司,安徽?六安 237471;3.酿酒生物技术及应用四川省重点实验室,四川?宜宾 644005)
  • 出版日期:2026-08-25 发布日期:2026-09-03
  • 基金资助:
    酿酒生物技术及应用四川省重点实验室项目(NJ2023-07);泸州老窖研究生创新基金项目(LJCX2024-2)

Genomic and Comparative Genomic Analysis of Ester-Producing Function in Schizosaccharomyces pombe JM2-5 from Nongxiangxing Daqu

LIU Chunyan, LUO Hao, LIU Jie, XIANG Xinyue, ZHANG Kaizheng, ZOU Wei   

  1. (1. School of Food and Liquor Engineering, Sichuan University of Science & Engineering, Yibin 644005, China; 2. Anhui Linshui Liquor Co. Ltd., Lu’an 237471, China; 3. Sichuan Provincial Key Laboratory of Brewing Biotechnology and Applications, Yibin 644005, China)
  • Online:2026-08-25 Published:2026-09-03

摘要: 本研究以从浓香型大曲中分离得到的粟酒裂殖酵母(Schizosaccharomyces pombe)JM2-5为研究对象,采用Illumina NovaSeq与PacBio Sequel双平台进行全基因组测序,结合基因功能注释、产酸产醇代谢通路分析及比较基因组学方法,系统挖掘其遗传背景与代谢潜力,菌株JM2-5的基因组大小为12.63 Mb,GC相对含量为36.09%。功能注释显示该基因组中含有大量参与碳水化合物、脂质及氨基酸代谢的基因,可为酯类合成提供丰富的前体物质。代谢途径重建结果表明JM2-5具备从糖类合成乙醇、乳酸、乙酸及多种短链脂肪酸的完整代谢网络。此外,在其基因组中鉴定到多种酯酶(如脂肪酶、羧酸酯酶)和短链脂肪酸转运蛋白编码基因,其中部分酯酶亚细胞定位预测为胞外,提示该菌可能具备胞内与胞外协同产酯的能力。比较基因组学分析显示,JM2-5保留了裂殖酵母应对环境胁迫的核心基因簇,并在DNA修复(如紫外线损伤切除修复)等相关基因家族发生显著扩张,这可能是其适应大曲复杂环境的重要遗传基础。综上所述,粟酒裂殖酵母JM2-5具备较强的产酸、产醇及酯类合成潜力,其基因组特征为深入解析该菌在白酒酿造过程中的产酯机制与生物学功能提供了遗传学依据。

关键词: 粟酒裂殖酵母;酯酶;全基因组;白酒;酯类物质

Abstract: In this study, the whole‑genome sequence of Schizosaccharomyces pombe JM2‑5, isolated from Nongxiangxing Baijiu Daqu, was obtained the Illumina NovaSeq and PacBio Sequel platforms. Its genetic background and metabolic potential were systematically explored through functional annotation, analysis of metabolic pathways related to acid and alcohol production, and comparative genomic analysis. The genome of JM2‑5 was 12.63 Mb in size with a GC content of 36.09%. Functional annotation showed that the genome contained numerous genes involved in the metabolism of carbohydrates, lipids and amino acids, providing plentiful precursors for ester synthesis. Metabolic pathway reconstruction indicated the strain had complete metabolic networks ​ enabling the synthesis of ethanol, acetic acid, and lactic acid, and various short-chain fatty acids from sugars. Multiple genes encoding esterases (carboxylesterase, arylesterase, and feruloyl esterase) and short-chain fatty acid (SCFA) transporters were identified; some esterases were predicted to be localized extracellularly, suggesting the strain’s potential for synergistic intracellular and extracellular ester production. Comparative genomic analysis further revealed that JM2‑5 retains core gene clusters of S. pombe for environmental stress response and exhibits significant expansion of gene families related to DNA repair (e.g., nucleotide excision repair of UV damage), which may provide an important genetic basis for the adaptation of JM2‑5 to the complex environment of Daqu. In conclusion, S. pombe JM2‑5 possesses strong capabilities for acid production, alcohol production, and ester synthesis, and its genomic characteristics provide a genetic foundation for elucidating​ the ester-producing mechanism and biological functions of this strain during Baijiu brewing.

Key words: Schizosaccharomyces pombe; esterase; whole genome; Baijiu; ester compounds

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