食品科学 ›› 2026, Vol. 47 ›› Issue (16): 94-105.doi: 10.7506/spkx1002-6630-20260114-110

• 生物工程 • 上一篇    下一篇

枯草芽孢杆菌和戊糖片球菌乙酰乳酸合成酶的异源表达及其酶学性质比较

刘裕峰,李圆鑫,袁思棋,王浩,黄楠,刘君   

  1. (1.四川轻化工大学食品与酿酒工程学院,四川?宜宾 644000;2.酿酒科学与技术四川省重点实验室,四川?宜宾 644000)
  • 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项目(NJ2024-PY-2); 四川轻化工大学大学生创新创业训练计划项目(CX2025143)

Heterologous Expression and Comparative Enzymatic Properties of Acetolactate Synthase from Bacillus subtilis and Pediococcus pentosaceus

LIU Yufeng, LI Yuanxin, YUAN Siqi, WANG Hao, HUANG Nan, LIU Jun   

  1. (1. School of Food and Liquor Engineering, Sichuan University of Science and Engineering, Yibin 644000, China; 2. Brewing Science and Technology Key Laboratory of Sichuan Province, Yibin 644000, China)
  • Online:2026-08-25 Published:2026-09-03

摘要: 本研究以实验室筛选获得的高产乙偶姻枯草芽孢杆菌JN17(Bacillus subtilis JN17)和戊糖片球菌JXQ20(Pediococcus pentosaceus JXQ20)为研究对象,对其乙酰乳酸合成酶ALS基因(BsALS和PpALS)进行克隆和异源表达,并对其酶学性质与结构特征进行系统表征。结果显示,枯草芽孢杆菌JN17的乙偶姻产量为18.158 1 g/L,显著高于戊糖片球菌JXQ20(0.044 2 g/L)。BsALS和PpALS的活力分别为184.87、2.57 U/mg,最适温度分别为50、30 ℃,最适pH值分别为7和6,且BsALS在热稳定性和pH值稳定性方面表现更优。Cs+对BsALS的抑制作用最强,Cu2+对PpALS的促进作用最显著,而十二烷基硫酸钠使两者完全失去活性。在乙醇体积分数20%条件下,BsALS保持76.03%的相对酶活力,而PpALS在乙醇体积分数15%条件下完全失去活性;在氯化钠质量分数5%条件下,BsALS的相对酶活力为52.42%,而PpALS仅为21.04%。BsALS和PpALS的米氏常数(Km)分别为77.54 mmol/L和255.98 mmol/L,最大反应速率(Vmax)分别为595.14 U/mg和19.04 U/mg。结构分析表明,两种ALS在与焦磷酸硫胺素和Mg2+结合的关键氨基酸残基及氢键数量上存在差异,可能是导致其催化性能和稳定性显著不同的分子基础。本研究从酶学和结构层面揭示了不同微生物乙偶姻合成能力差异的内在机制,为乙酰乳酸合成酶的理性改造及其在食品发酵和工业生物合成中的应用提供了理论依据。

关键词: 乙酰乳酸合成酶;枯草芽孢杆菌;戊糖片球菌;异源表达;酶学性质

Abstract: In this study, the acetolactate synthase-encoding genes (BsALS and PpALS) of two high-yield acetoin-producing strains obtained in our laboratory, Bacillus subtilis JN17 and Pediococcus pentosaceus JXQ20, were cloned and heterologously expressed and their enzymatic properties and structural characteristics were systematically characterized. The results showed that B. subtilis JN17 produced 18.158 1 g/L of acetoin, significantly higher than 0.044 2 g/L produced by P. pentosaceus JXQ20. The activities of BsALS and PpALS were 184.87 and 2.57 U/mg, respectively. Their optimal temperatures were 50 and 30 ℃, and optimal pH were 7 and 6, respectively, with BsALS exhibiting superior thermal and pH stability. Cs+ showed the strongest inhibition on BsALS, while Cu2+ significantly enhanced PpALS activity, and sodium dodecyl sulfate (SDS) completely inactivated both enzymes. BsALS retained 76.03% of its initial activity at 20% (V/V) ethanol, while PpALS lost all activity at 15% (V/V) ethanol. In the presence of 5% NaCl, BsALS maintained 52.42% of its original activity, compared with only 21.04% for PpALS. The Michaelis constants (Km) for BsALS and PpALS were 77.54 and 255.98 mmol/L, respectively, with maximum reaction rates (Vmax) of 595.14 and 19.04 U/mg, respectively. Structural analysis indicated the two ALSs differed in key amino acid residues that bind to thiamine diphosphate (ThDP) and Mg2+ as well as the number of formed hydrogen bonds, possibly explaining the significant differences in their catalytic performance and stability. These findings offer a theoretical foundation for the rational modification of acetolactate synthase and its application in food fermentation and industrial biosynthesis.

Key words: acetolactate synthase; Bacillus subtilis; Pediococcus pentosaceus; heterologous expression; enzymatic properties

中图分类号: