Uga3 influences nitrogen metabolism in Saccharomyces cerevisiae by modulating arginine biosynthesis.

IF 4.1 3区 生物学 Q2 CELL BIOLOGY
Microbial Cell Pub Date : 2025-06-12 eCollection Date: 2025-01-01 DOI:10.15698/mic2025.06.851
Nicolás Urtasun, Sebastián Aníbal Muñoz, Martín Arán, Mariana Bermúdez-Moretti
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引用次数: 0

Abstract

Nitrogen metabolism in Saccharomyces cerevisiae is tightly regulated to optimize the utilization of available nitrogen sources. Uga3 is a known transcription factor involved in the gamma-aminobutyric acid (GABA) pathway; however, its broader role in nitrogen metabolism remains unclear. Here, we demonstrate that Uga3 influences arginine biosynthesis, linking its function beyond GABA utilization when cells grow with proline as the sole and poor nitrogen source. Using a combination of intracellular amino acid quantification, proteomics, and gene expression analysis, we show that the absence of Uga3 leads to a significant increase in intracellular arginine levels and the up-regulation of ARG5,6, a key gene in the arginine biosynthesis pathway. Proteomic analysis of uga3∆ cells reveals differential expression of multiple nitrogen metabolism-related proteins, suggesting a broader regulatory role for Uga3. Surprisingly, chromatin immunoprecipitation (ChIP) assays indicate that Uga3 does not directly bind the ARG5,6 promoter, implying an indirect regulatory mechanism. These findings expand the known functions of Uga3, positioning it as a key player in the coordinated regulation of nitrogen metabolism. Given the impact of nitrogen availability on industrial fermentation processes, our results provide new insights into optimizing yeast performance under nitrogen-limited conditions.

Uga3通过调节精氨酸生物合成影响酿酒酵母的氮代谢。
酿酒酵母的氮代谢受到严格调控,以优化有效氮源的利用。Uga3是一种已知的参与γ -氨基丁酸(GABA)通路的转录因子;然而,其在氮代谢中的更广泛作用尚不清楚。在这里,我们证明了Uga3影响精氨酸的生物合成,当细胞以脯氨酸作为唯一和贫乏的氮源生长时,它的功能超出了GABA的利用。结合细胞内氨基酸定量、蛋白质组学和基因表达分析,我们发现Uga3的缺失导致细胞内精氨酸水平显著增加,并导致精氨酸生物合成途径关键基因arg5,6的上调。uga3∆细胞的蛋白质组学分析显示多种氮代谢相关蛋白的差异表达,表明uga3具有更广泛的调节作用。令人惊讶的是,染色质免疫沉淀(ChIP)试验表明,Uga3不直接结合arg5,6启动子,这意味着间接调节机制。这些发现扩展了已知的Uga3功能,将其定位为协调调节氮代谢的关键角色。考虑到氮可用性对工业发酵过程的影响,我们的研究结果为在氮限制条件下优化酵母性能提供了新的见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Microbial Cell
Microbial Cell Multiple-
CiteScore
6.40
自引率
0.00%
发文量
32
审稿时长
12 weeks
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