Transcriptomic Response Pathways of Yeast to Crucial Polyphenolic Acids in Rosmarinus Acid Biosynthesis.

IF 2.3 3区 生物学 Q3 MICROBIOLOGY
Tao Xu, Jun-Lu Duan, Samuel Ntakirutimana, Li Wang, Zhi-Hua Liu, Chun Li, Bing-Zhi Li
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引用次数: 0

Abstract

Rosmarinic acid (RA) is a natural polyphenolic compound with various biological and pharmaceutical activities. Due to the limited availability in plant sources and the complexity of its chemical synthesis, the biosynthesis of RA shows great potential. However, few studies have investigated RA biosynthesis in S. cerevisiae, and inhibitory effects from its biosynthesis on intrinsic metabolic pathways remain unclear. In this study, RNA-seq technology was employed to investigate the stress response of S. cerevisiae to RA and its precursors (caffeic acid, CA and salvianic acid, SAA). The results revealed an increased inhibitory effect with a variation number of differentially expressed genes (DEGs): 338 for 200-mg/L SAA, 510 for 200-mg/L CA, and 934 for 200-mg/L RA. Furthermore, trends analysis of DEGs expression level uncovered similar stress response patterns of S. cerevisiae under RA and SAA, indicating a shared inhibition mechanism. Common response pathways, including ribosome biogenesis, RNA polymerase biosynthesis, and purine and pyrimidine metabolism, were elucidated. Additionally, common regulated genes (HSP12, PAU4, TIR3) and different regulated genes (UTP6, NAN1, IMP4) in aforementioned pathways were identified. Unique genes and pathways were also mapped to reveal the special response mechanism to different polyphenolic acids, such as oxidative phosphorylation for RA and amino acid metabolism for CA. Overall, this work provides a foundation for understanding transcriptomic response of yeast to RA and RA biosynthesis.

迷迭香酸生物合成中酵母对关键多酚酸的转录组反应途径
迷迭香酸是一种具有多种生物活性和药理活性的天然多酚类化合物。由于植物来源的有限性和其化学合成的复杂性,RA的生物合成显示出巨大的潜力。然而,很少有研究研究酿酒酵母的RA生物合成,其生物合成对内在代谢途径的抑制作用尚不清楚。本研究采用RNA-seq技术研究了酿酒葡萄球菌对RA及其前体(咖啡酸,CA和丹参酸,SAA)的胁迫反应。结果显示,随着差异表达基因(DEGs)变异数的增加,抑制效果增强:200-mg/L SAA为338个,200-mg/L CA为510个,200-mg/L RA为934个。此外,对DEGs表达水平的趋势分析发现,RA和SAA对酿酒葡萄球菌的应激反应模式相似,表明它们具有共同的抑制机制。阐明了常见的反应途径,包括核糖体的生物发生、RNA聚合酶的生物合成以及嘌呤和嘧啶的代谢。此外,我们还发现了上述通路中常见的调控基因(HSP12、PAU4、TIR3)和不同的调控基因(UTP6、NAN1、IMP4)。此外,我们还绘制了独特的基因和途径,揭示了酵母对不同多酚酸的特殊反应机制,如RA的氧化磷酸化和CA的氨基酸代谢。这些工作为了解酵母对RA和RA生物合成的转录组反应奠定了基础。
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来源期刊
Current Microbiology
Current Microbiology 生物-微生物学
CiteScore
4.80
自引率
3.80%
发文量
380
审稿时长
2.5 months
期刊介绍: Current Microbiology is a well-established journal that publishes articles in all aspects of microbial cells and the interactions between the microorganisms, their hosts and the environment. Current Microbiology publishes original research articles, short communications, reviews and letters to the editor, spanning the following areas: physiology, biochemistry, genetics, genomics, biotechnology, ecology, evolution, morphology, taxonomy, diagnostic methods, medical and clinical microbiology and immunology as applied to microorganisms.
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