食品科学 ›› 2026, Vol. 47 ›› Issue (13): 174-184.doi: 10.7506/spkx1002-6630-20251214-108

• 生物工程 • 上一篇    下一篇

酸胁迫下凝结海恩德里克斯氏菌的生理响应特征与差异转录分析

马天雪,罗雅欣,吴晨瑜,孙子羽,陈忠军,满都拉   

  1. (1.内蒙古农业大学食品科学与工程学院,内蒙古 呼和浩特 010000;2.鄂尔多斯市蒙纯乳业有限责任公司,内蒙古 鄂尔多斯 017000)
  • 出版日期:2026-07-15 发布日期:2026-07-17
  • 基金资助:
    “科技兴蒙”行动重点专项(2021XM03);呼包鄂国家自主创新示范区建设科技支撑项目(2024XM06)

Physiological Response Characteristics and Differential Transcriptomic Analysis of Heyndrickxia coagulans under Acid Stress

MA Tianxue, LUO Yaxin, WU Chenyu, SUN Ziyu, CHEN Zhongjun, Mandlaa   

  1. (1. College of Food Science and Engineering, Inner Mongolia Agricultural University, Hohhot 010000, China; 2. Ordos Mengchun Dairy Co. Ltd., Ordos 017000, China)
  • Online:2026-07-15 Published:2026-07-17

摘要: 高抗逆性使凝结海恩德里克斯氏菌(Heyndrickxia coagulans)在食品、医药及养殖业领域被广泛应用。通过分析酸胁迫对凝结海恩德里克斯氏菌胞内pH(pHin)值、胞内ATP含量、H+-ATPase活性和细胞膜脂肪酸组成及基因表达的影响,探究凝结海恩德里克斯氏菌耐酸机制。结果显示,在酸胁迫(pH 3.0)下,强耐酸株(C6)和弱耐酸株(B8)均能保持稳定的pHin值,且ATP含量提高,H+-ATPase活性降低,细胞膜脂肪酸不饱和度及平均碳链长度增加,但C6在这些方面表现更为突出。进一步转录组测序分析发现,C6在酸胁迫下共有1 430 个差异表达基因(上调639 个、下调791 个),涉及氨基酸代谢、脂肪酸合成与代谢、能量代谢、碳水化合物代谢、大分子保护和修复、转录与翻译调控6 个方面。酸胁迫下,C6可通过降低饱和脂肪酸含量增强细胞膜流动性,进而阻挡H+进入,以及通过促进支链氨基酸合成减少丙酮酸通过糖酵解生成乳酸,以避免胞内酸化,保持pHin值稳定。C6还可通过增强戊糖磷酸途径氧化和三羧酸循环促进胞内能量的产生,使ATP含量升高,通过上调氧化磷酸化途径呼吸链相关基因表达增强H+的消耗和能量的合成,以保持pHin值稳定,同时合成更多ATP。此外,还发现编码分子伴侣蛋白、应激蛋白、DNA修复相关基因表达上调,保护及修复酸胁迫对生物大分子和蛋白的损伤。核糖体亚基基因表达下调抑制核糖体合成,减少胞内蛋白质合成和ATP消耗,这与酸胁迫下胞内ATP的积累一致。

关键词: 凝结海恩德里克斯氏菌;酸胁迫;细胞膜脂肪酸;胞内pH值;转录组

Abstract: Heyndrickxia coagulans finds wide applications in the food, pharmaceutical, and aquaculture industries due to its high stress resistance. In this study, we investigated the acid tolerance mechanism of H. coagulans by analyzing the effect of acid stress on its intracellular pH (pHin), intracellular ATP content, H+-ATPase activity, cell membrane fatty acid composition, and gene expression. The results showed that under acid stress (pH 3.0), both high acid-tolerant (C6) and low acid-tolerant strains (B8) maintained stable pHin and exhibited increased intracellular ATP content and decreased H+-ATPase activity. The unsaturation degree and average carbon chain length of fatty acids in their cell membranes increased, with C6 exhibiting more prominent performance in these aspects. Transcriptome sequencing analysis identified a total of 1 430 differentially expressed genes (DEGs; 639 upregulated and 791 downregulated) in strain C6 under acid stress, which were involved in six functional categories: amino acid metabolism, fatty acid synthesis and metabolism, energy metabolism, carbohydrate metabolism, macromolecular protection and repair, and transcription and translation regulation. Under acid stress, C6 enhanced cell membrane fluidity by reducing the content of saturated fatty acids, thereby preventing the influx of hydrogen ions. Meanwhile, it strengthened the synthesis of branched-chain amino acids to reduce the conversion of pyruvate to lactic acid via glycolysis, thus avoiding intracellular acidification and maintaining pHin stability. Additionally, C6 was able to increase intracellular energy production by enhancing the oxidative phase of the pentose phosphate pathway and the tricarboxylic acid cycle, leading to elevated intracellular ATP content. It also promoted hydrogen ion consumption and energy synthesis by upregulating the expression of genes related to the respiratory chain in the oxidative phosphorylation pathway, so as to maintain pHin stability while synthesizing more ATP. Furthermore, we found that the expression of genes encoding molecular chaperones, stress proteins, and DNA repair-related proteins were upregulated, thereby protecting against and repairing damage to biological macromolecules and proteins caused by acid stress. The downregulated expression of ribosomal subunit genes inhibited ribosome synthesis, reduced intracellular protein synthesis, and decreased intracellular ATP consumption, which was consistent with the accumulation of intracellular ATP under acid stress.

Key words: Heyndrickxia coagulans; acid stress; cell membrane fatty acids; intracellular pH; transcriptome

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