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逆转录途径转录因子 rtg1 和 rtg3 敲除酵母的代谢谱分析。

Metabolic profiling of retrograde pathway transcription factors rtg1 and rtg3 knockout yeast.

机构信息

Department of Biotechnology, Graduate School of Engineering, Osaka University, 2-1 Yamadaoka, Suita, Osaka 565-0871, Japan.

Department of Bioscience, Nagahama Institute of Bio-Science and Technology, 1266 Tamura, Nagahama, Shiga 526-0829, Japan.

出版信息

Metabolites. 2014 Jul 8;4(3):580-98. doi: 10.3390/metabo4030580.

Abstract

Rtg1 and Rtg3 are two basic helix-loop-helix (bHLH) transcription factors found in yeast Saccharomyces cerevisiae that are involved in the regulation of the mitochondrial retrograde (RTG) pathway. Under RTG response, anaplerotic synthesis of citrate is activated, consequently maintaining the supply of important precursors necessary for amino acid and nucleotide synthesis. Although the roles of Rtg1 and Rtg3 in TCA and glyoxylate cycles have been extensively reported, the investigation of other metabolic pathways has been lacking. Characteristic dimer formation in bHLH proteins, which allows for combinatorial gene expression, and the link between RTG and other regulatory pathways suggest more complex metabolic signaling involved in Rtg1/Rtg3 regulation. In this study, using a metabolomics approach, we examined metabolic alteration following RTG1 and RTG3 deletion. We found that apart from TCA and glyoxylate cycles, which have been previously reported, polyamine biosynthesis and other amino acid metabolism were significantly altered in RTG-deficient strains. We revealed that metabolic alterations occurred at various metabolic sites and that these changes relate to different growth phases, but the difference can be detected even at the mid-exponential phase, when mitochondrial function is repressed. Moreover, the effect of metabolic rearrangements can be seen through the chronological lifespan (CLS) measurement, where we confirmed the role of the RTG pathway in extending the yeast lifespan. Through a comprehensive metabolic profiling, we were able to explore metabolic phenotypes previously unidentified by other means and illustrate the possible correlations of Rtg1 and Rtg3 in different pathways.

摘要

Rtg1 和 Rtg3 是酵母酿酒酵母中两种基本的螺旋-环-螺旋(bHLH)转录因子,它们参与调节线粒体逆行(RTG)途径。在 RTG 反应下,柠檬酸的补料合成被激活,从而维持了氨基酸和核苷酸合成所需的重要前体的供应。尽管 Rtg1 和 Rtg3 在 TCA 和乙醛酸循环中的作用已经得到了广泛的报道,但对其他代谢途径的研究还很缺乏。bHLH 蛋白的特征二聚体形成允许组合基因表达,以及 RTG 与其他调节途径之间的联系表明,Rtg1/Rtg3 调节涉及更复杂的代谢信号。在这项研究中,我们使用代谢组学方法研究了 RTG1 和 RTG3 缺失后的代谢变化。我们发现,除了先前报道的 TCA 和乙醛酸循环之外,多胺生物合成和其他氨基酸代谢在 RTG 缺陷菌株中也发生了显著改变。我们揭示了代谢变化发生在不同的代谢部位,这些变化与不同的生长阶段有关,但即使在线粒体功能受到抑制的指数增长中期,也可以检测到这种差异。此外,通过对酵母的寿命(CLS)进行测量,我们发现代谢重排的影响可以被观察到,这证实了 RTG 途径在延长酵母寿命中的作用。通过全面的代谢谱分析,我们能够探索以前通过其他方法无法识别的代谢表型,并说明 Rtg1 和 Rtg3 在不同途径中的可能相关性。

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