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在低 pH 条件下对酿酒酵母和植物乳杆菌的苹果酸代谢基因进行比较功能分析及其在酸胁迫响应中的作用。

Comparative functional analysis of malate metabolism genes in Oenococcus oeni and Lactiplantibacillus plantarum at low pH and their roles in acid stress response.

机构信息

College of Enology, Northwest A&F University, Yangling 712100, Shaanxi, China; College of Food Science and Pharmacy, Xinjiang Agricultural University, Urumqi 830000, Xinjiang, China.

College of Enology, Northwest A&F University, Yangling 712100, Shaanxi, China.

出版信息

Food Res Int. 2022 Jul;157:111235. doi: 10.1016/j.foodres.2022.111235. Epub 2022 Apr 14.

Abstract

Oenococcus oeni and Lactiplantibacillus plantarum are major wine-associated lactic acid bacteria that positively influence wine by carrying out malolactic fermentation. O. oeni is the most widely used commercial starter in winemaking because of its fast and efficient malate metabolism capacity under harsh wine conditions. To date, very little is known about the specific molecular mechanism underlying the differences in malate metabolism between O. oeni and L. plantarum under harsh wine conditions. Therefore, in this study, the functions of genes encoding malic enzyme (ME) and malolactic enzyme (MLE) under acid stress in O. oeni and L. plantarum, previously described to have the ability to direct malate metabolism, were comparatively verified through genetic manipulation in L. plantarum. Results showed that the MLE was the only enzyme responsible for direct malate metabolism under acid stress in O. oeni and L. plantarum. In addition, the MLEs in O. oeni and L. plantarum were positively related to acid tolerance by metabolizing malate and increasing the medium pH. Furthermore, the MLE in O. oeni exhibited significantly higher malate metabolism activity than that in L. plantarum under acid stress.

摘要

酒香酵母和植物乳杆菌是主要的与葡萄酒相关的乳酸菌,通过进行苹果酸-乳酸发酵对葡萄酒产生积极影响。由于在恶劣的葡萄酒条件下具有快速而高效的苹果酸代谢能力,酒香酵母是酿酒中使用最广泛的商业发酵剂。迄今为止,对于在恶劣的葡萄酒条件下,苹果酸代谢之间的差异的特定分子机制,人们知之甚少。因此,在本研究中,通过在植物乳杆菌中进行遗传操作,比较验证了先前描述的具有定向苹果酸代谢能力的编码苹果酸酶(ME)和苹果酸-乳酸酶(MLE)的基因在酸性胁迫下的功能。结果表明,MLE 是在 O. oeni 和 L. plantarum 中直接进行苹果酸代谢的唯一酶。此外,MLE 在 O. oeni 和 L. plantarum 中与耐酸性呈正相关,通过代谢苹果酸和增加培养基 pH 值。此外,MLE 在 O. oeni 中的苹果酸代谢活性显著高于 L. plantarum 在酸性胁迫下的苹果酸代谢活性。

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