食品科学 ›› 2026, Vol. 47 ›› Issue (16): 125-133.doi: 10.7506/spkx1002-6630-20260128-257

• 生物工程 • 上一篇    下一篇

基于组学分析的补料优化促进羟基酪醇发酵合成

鲁佳康,史玥玡,蔡雨洁,占杨杨,王志   

  1. (1.湖北工业大学 教育部工业发酵省部共建协同创新中心,发酵工程教育部重点实验室,湖北?武汉 430068;2.湖北大学生命科学学院,湖北?武汉 430062)
  • 出版日期:2026-08-25 发布日期:2026-09-03
  • 基金资助:
    湖北省教育厅优秀中青年科技创新团队项目(T2022011)

Fed-Batch Fermentation Optimization Based on Omics Analyses to Enhance Hydroxytyrosol Production

LU Jiakang, SHI Yueya, CAI Yujie, ZHAN Yangyang, WANG Zhi   

  1. (1. Cooperative Innovation Center of Industrial Fermentation (Ministry of Education & Hubei Province), Key Laboratory of Fermentation Engineering (Ministry of Education), Hubei University of Technology, Wuhan 430068, China; 2. School of Life Sciences, Hubei University, Wuhan 430062, China)
  • Online:2026-08-25 Published:2026-09-03

摘要: 为提高地衣芽孢杆菌合成羟基酪醇(hydroxytyrosol,HT)效率,对发酵14(合成期)、16 h(停滞期)及18 h(二次合成期)进行转录组与代谢组差异分析,发现停滞期糖酵解基因pgi、fbaA和pdhC等下调42.4%~80.9%,胞内葡萄糖和丙酮酸丰度下调14%~16%;zwf、tkt和gndA下调64.1%~95.6%,5-磷酸核糖和7-磷酸庚酮糖丰度分别上调97%、68%;citA、icd、sdhA和mdh下调75.0%~92.1%,草酰琥珀酸、富马酸和苹果酸丰度下调37%~47%;有机酸转运yhfQ、maeN和cimH下调71.9%~73.0%;氧化磷酸化基因atpA、ctaE和sdhB下调89.5%~92.2%;HT合成代谢aroCDK、yugJ和hpaC下调53.3%~96.6%,说明停滞期细胞碳代谢及能量代谢处于限制状态。17 h加大供氧后pgi、fbaA上调356%~994%;zwf、tkt、gndA上调301%~4 084%;pdhC、citA、icd、sdhA、lpdV、nadB、rocG表达水平上调204%~2 325%;atpA、ctaE和sdhE上调443%~1 245%;aroA、aroC、tyrA、hpaC上调244%~736%;柠檬酸转运基因cimH上调10 倍;β-氧化基因fadABDN下调94.1%~99.1%。丙酮酸、3-磷酸甘油醛、柠檬酸、草酰琥珀酸、富马酸、苹果酸、5-磷酸核糖丰度较停滞期(16 h)提升了10%~125%,说明提高通风有效驱动了糖酵解、磷酸戊糖途径运转效率,并显示出柠檬酸和脂肪酸参与碳代谢的潜力。基于此建立了耦合pH值补加柠檬酸及豆油等优化策略,HT产量达到7.21 g/L,比对照(3.49 g/L)提高了106.6%,为HT工业化发酵生产提供了重要参考。

关键词: 地衣芽孢杆菌;羟基酪醇;转录组学;代谢组学;发酵优化;柠檬酸;豆油

Abstract: To enhance the hydroxytyrosol (HT) biosynthesis efficiency of Bacillus licheniformis, transcriptomic and metabolomic differential analyses were performed on samples collected at three fermentation stages: 14 h (biosynthetic phase), 16 h (stagnant phase), and 18 h (secondary biosynthetic phase). In the stagnant phase, the expression levels of Embden-Meyerhof-Parnas (EMP) pathway-related genes including pgi, fbaA and pdhC were down-regulated by 42.4%–80.9%, accompanied by a 14%–16% reduction in the intracellular abundances of glucose and pyruvate. The expression levels of the zwf, tkt and gndA genes were down-regulated by 64.1%–95.6%, and the abundances of ribose 5-phosphate and sedoheptulose 7-phosphate were increased by 97% and 68%, respectively. The expression levels of the citA, icd, sdhA and mdh genes were down-regulated by 75.0%–92.1%, leading to a 37%–47% decrease in the levels of isocitrate, succinate, fumarate, and malate. The expression levels of the organic acid transporter genes yhfQ, maeN, and cimH were down-regulated by 71.9%–73.0%. The expression levels of the oxidative phosphorylation genes atpA, ctaE and sdhB were down-regulated by 89.5%–92.2%, and those of the HT biosynthetic genes aroCDK, yugJ and hpaC by 53.3%–96.6%. These results demonstrated that cellular carbon metabolism and energy metabolism were severely restricted during the stagnant phase. After oxygen supply was enhanced at 17 h, the expression levels of pgi and fbaA were increased by 356%–994%, those of zwf, tkt and gndA by 301%–4 084%, those of pdhC, citA, icd, sdhA, lpdV, nadB, and rocG by 204%–2 325%, those of atpA, ctaE and sdhE by 443%–1 245%, and those of aroA, aroC, tyrA and hpaC by 244%–736%; the expression level of the citrate transporter gene cimH was up-regulated by 10-fold, while that of the β-oxidation gene fadABDN was down-regulated by 94.1%–99.1%. The intracellular abundances of pyruvate, glyceraldehyde 3-phosphate, citrate, oxalosuccinate, fumarate, malate and ribose 5-phosphate were increased by 10%–125% compared with those at 16 h (stagnant phase). Collectively, elevated aeration effectively boosted the efficiency of glycolysis and the pentose phosphate pathway (HMP), and revealed the potential of citrate and fatty acids to participate in carbon metabolism. On this basis, an optimized fermentation strategy integrating pH-controlled citrate supplementation and soybean oil addition was established. Using this strategy an HT yield of 7.21 g/L was achieved, which was 106.6% higher than that of the control group (3.49 g/L). This study provides a valuable reference for the industrial fermentative production of HT.

Key words: Bacillus licheniformis; hydroxytyrosol; transcriptomics; metabolomics; fermentation optimization; citric acid; soybean oil

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