State Key Laboratory of Microbial Metabolism, Joint International Research Laboratory of Metabolic & Developmental Sciences, School of Life Sciences and Biotechnology, Shanghai Jiao Tong University, Shanghai 200240, China.
J Proteome Res. 2024 Aug 2;23(8):2986-2998. doi: 10.1021/acs.jproteome.3c00617. Epub 2024 Feb 23.
Acetic acid is a prevalent inhibitor in lignocellulosic hydrolysate, which represses microbial growth and bioproduction. Histone modification and chromatin remodeling have been revealed to be critical for regulating eukaryotic metabolism. However, related studies in chronic acetic acid stress responses remain unclear. Our previous studies revealed that overexpression of the histone H4 methyltransferase Set5p enhanced acetic acid stress tolerance of the budding yeast . In this study, we examined the role of Set5p in acetic acid stress by analyzing global protein expression. Significant activation of intracellular protein expression under the stress was discovered, and the functions of the differential proteins were mainly involved in chromatin modification, signal transduction, and carbohydrate metabolism. Notably, a substantial increase of Set5p expression was observed in response to acetic acid stress. Functional studies demonstrated that the restriction of the telomere capping protein Rtc3p, as well as Ies3p and Taf14p, which are related to chromatin regulation, was critical for yeast stress response. This study enriches the understanding of the epigenetic regulatory mechanisms underlying yeast stress response mediated by histone-modifying enzymes. The results also benefit the development of robust yeast strains for lignocellulosic bioconversion.
乙酸是木质纤维素水解物中普遍存在的抑制剂,它会抑制微生物的生长和生物生产。组蛋白修饰和染色质重塑已被揭示对调节真核生物代谢至关重要。然而,关于慢性乙酸应激反应的相关研究仍不清楚。我们之前的研究表明,组蛋白 H4 甲基转移酶 Set5p 的过表达增强了芽殖酵母对乙酸胁迫的耐受性。在这项研究中,我们通过分析全局蛋白质表达来研究 Set5p 在乙酸胁迫下的作用。发现应激下细胞内蛋白质表达显著激活,差异蛋白的功能主要涉及染色质修饰、信号转导和碳水化合物代谢。值得注意的是,在响应乙酸胁迫时观察到 Set5p 表达的大量增加。功能研究表明,端粒封端蛋白 Rtc3p 的限制,以及与染色质调节相关的 Ies3p 和 Taf14p,对酵母应激反应至关重要。这项研究丰富了组蛋白修饰酶介导的酵母应激反应的表观遗传调控机制的理解。研究结果也有利于开发用于木质纤维素生物转化的稳健酵母菌株。