College of Food Science and Engineering, Northwest A&F University, Yangling, Shaanxi 712100, China.
College of Life Sciences and State Key Laboratory of Crop Stress Biology for Arid Areas, Northwest A&F University, Yangling, Shaanxi 712100, China.
J Agric Food Chem. 2021 Mar 10;69(9):2906-2918. doi: 10.1021/acs.jafc.0c07599. Epub 2021 Feb 15.
plays a key role in inducing malolactic fermentation in wine. Acid stress is often encountered under wine conditions. However, the lack of systematic studies of acid resistance mechanisms limits the downstream fermentation applications. In this study, the acid responses of were investigated by combining transcriptome, metabolome, and genome-scale metabolic modeling approaches. Metabolite profiling highlighted the decreased abundance of nucleotides under acid stress. The gene-metabolite bipartite network showed negative correlations between nucleotides and genes involved in ribosome assembly, translation, and post-translational processes, suggesting that stringent response could be activated under acid stress. Genome-scale metabolic modeling revealed marked flux rerouting, including reallocation of pyruvate, attenuation of glycolysis, utilization of carbon sources other than glucose, and enhancement of nucleotide salvage and the arginine deiminase pathway. This study provided novel insights into the acid responses of , which will be useful for designing strategies to address acid stress in wine malolactic fermentation.
在诱导葡萄酒进行苹果酸-乳酸发酵中发挥着关键作用。在葡萄酒酿造条件下,经常会遇到酸胁迫。然而,由于缺乏对酸抗性机制的系统研究,限制了其在下游发酵中的应用。在本研究中,采用转录组学、代谢组学和基因组尺度代谢建模方法相结合,研究了对酸的响应。代谢物分析突出了在酸胁迫下核苷酸含量减少。基因-代谢物二分网络显示核苷酸与核糖体组装、翻译和翻译后过程相关基因之间呈负相关,表明在酸胁迫下可能会激活严谨反应。基因组尺度代谢建模揭示了明显的通量重排,包括丙酮酸的重新分配、糖酵解的衰减、除葡萄糖以外的碳源的利用,以及核苷酸回收和精氨酸脱氨酶途径的增强。本研究为研究提供了对的酸响应的新见解,这将有助于设计策略来解决葡萄酒苹果酸-乳酸发酵中的酸胁迫问题。