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对葡萄糖饥饿的全面反应:基于转录组学的分析

Comprehensive Response of to Glucose Starvation: A Transcriptomics-Based Analysis.

作者信息

He Meixia, Guo Rui, Chen Gongshui, Xiong Chao, Yang Xiaoxia, Wei Yunlin, Chen Yuan, Qiu Jingwen, Zhang Qi

机构信息

Faculty of Life Science and Technology, Kunming University of Science and Technology, Kunming 650500, China.

出版信息

Microorganisms. 2023 Aug 27;11(9):2168. doi: 10.3390/microorganisms11092168.

Abstract

Microorganisms adopt diverse mechanisms to adapt to fluctuations of nutrients. Glucose is the preferred carbon and energy source for yeast. Yeast cells have developed many strategies to protect themselves from the negative impact of glucose starvation. Studies have indicated a significant increase of carotenoids in red yeast under glucose starvation. However, their regulatory mechanism is still unclear. In this study, we investigated the regulatory mechanism of carotenoid biosynthesis in YM25235 under glucose starvation. More intracellular reactive oxygen species (ROS) was produced when glucose was exhausted. Enzymatic and non-enzymatic (mainly carotenoids) antioxidant systems in YM25235 were induced to protect cells from ROS-related damage. Transcriptome analysis revealed massive gene expression rearrangement in YM25235 under glucose starvation, leading to alterations in alternative carbon metabolic pathways. Some potential pathways for acetyl-CoA and then carotenoid biosynthesis, including fatty acid β-oxidation, amino acid metabolism, and pyruvate metabolism, were significantly enriched in KEGG analysis. Overexpression of the fatty acyl-CoA oxidase gene (), the first key rate-limiting enzyme of peroxisomal fatty acid β-oxidation, demonstrated that fatty acid β-oxidation could increase the acetyl-CoA and carotenoid concentration in YM25235. These findings contribute to a better understanding of the overall response of red yeast to glucose starvation and the regulatory mechanisms governing carotenoid biosynthesis under glucose starvation.

摘要

微生物采用多种机制来适应营养物质的波动。葡萄糖是酵母首选的碳源和能源。酵母细胞已开发出许多策略来保护自身免受葡萄糖饥饿的负面影响。研究表明,在葡萄糖饥饿条件下,红酵母中的类胡萝卜素显著增加。然而,其调控机制仍不清楚。在本研究中,我们研究了葡萄糖饥饿条件下 YM25235 中类胡萝卜素生物合成的调控机制。当葡萄糖耗尽时,会产生更多的细胞内活性氧(ROS)。YM25235 中的酶促和非酶促(主要是类胡萝卜素)抗氧化系统被诱导,以保护细胞免受与 ROS 相关的损伤。转录组分析显示,在葡萄糖饥饿条件下,YM25235 中大量基因表达发生重排,导致替代碳代谢途径发生改变。在KEGG 分析中,一些潜在的乙酰辅酶 A 进而类胡萝卜素生物合成途径,包括脂肪酸β-氧化、氨基酸代谢和丙酮酸代谢,显著富集。过氧化物酶体脂肪酸β-氧化的第一个关键限速酶——脂肪酰辅酶 A 氧化酶基因()的过表达表明,脂肪酸β-氧化可以增加 YM25235 中的乙酰辅酶 A 和类胡萝卜素浓度。这些发现有助于更好地理解红酵母对葡萄糖饥饿的整体反应以及葡萄糖饥饿条件下类胡萝卜素生物合成的调控机制。

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