Thota Swarna Gowri, Unnikannan C P, Thampatty Sitalakshmi R, Manorama R, Bhandari Rashna
*Laboratory of Cell Signalling, Centre for DNA Fingerprinting and Diagnostics, Nampally, Hyderabad, Telangana, India.
Biochem J. 2015 Feb 15;466(1):105-14. doi: 10.1042/BJ20140798.
Ribosome biogenesis is an essential cellular process regulated by the metabolic state of a cell. We examined whether inositol pyrophosphates, energy-rich derivatives of inositol that act as metabolic messengers, play a role in ribosome synthesis in the budding yeast, Saccharomyces cerevisiae. Yeast strains lacking the inositol hexakisphosphate (IP6) kinase Kcs1, which is required for the synthesis of inositol pyrophosphates, display increased sensitivity to translation inhibitors and decreased protein synthesis. These phenotypes are reversed on expression of enzymatically active Kcs1, but not on expression of the inactive form. The kcs1Δ yeast cells exhibit reduced levels of ribosome subunits, suggesting that they are defective in ribosome biogenesis. The rate of rRNA synthesis, the first step of ribosome biogenesis, is decreased in kcs1Δ yeast strains, suggesting that RNA polymerase I (Pol I) activity may be reduced in these cells. We determined that the Pol I subunits, A190, A43 and A34.5, can accept a β-phosphate moiety from inositol pyrophosphates to undergo serine pyrophosphorylation. Although there is impaired rRNA synthesis in kcs1Δ yeast cells, we did not find any defect in recruitment of Pol I on rDNA, but observed that the rate of transcription elongation was compromised. Taken together, our findings highlight inositol pyrophosphates as novel regulators of rRNA transcription.
核糖体生物合成是一个受细胞代谢状态调控的基本细胞过程。我们研究了肌醇焦磷酸(作为代谢信使的肌醇的富含能量的衍生物)是否在芽殖酵母酿酒酵母的核糖体合成中发挥作用。缺乏肌醇焦磷酸合成所需的肌醇六磷酸(IP6)激酶Kcs1的酵母菌株,对翻译抑制剂的敏感性增加,蛋白质合成减少。这些表型在具有酶活性的Kcs1表达时会逆转,但在无活性形式的表达时不会逆转。kcs1Δ酵母细胞显示核糖体亚基水平降低,表明它们在核糖体生物合成方面存在缺陷。核糖体生物合成的第一步即rRNA合成速率在kcs1Δ酵母菌株中降低,表明这些细胞中的RNA聚合酶I(Pol I)活性可能降低。我们确定Pol I亚基A190、A43和A34.5可以从肌醇焦磷酸接受β - 磷酸部分以进行丝氨酸焦磷酸化。尽管kcs1Δ酵母细胞中rRNA合成受损,但我们未发现Pol I在rDNA上的募集存在任何缺陷,而是观察到转录延伸速率受到损害。综上所述,我们的研究结果突出了肌醇焦磷酸作为rRNA转录的新型调节因子。