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裂殖酵母Cdk9、其周期蛋白伴侣Pch1和mRNA加帽酶Pct1之间的相互作用表明存在一个用于mRNA质量控制的延伸检查点。

Interactions between fission yeast Cdk9, its cyclin partner Pch1, and mRNA capping enzyme Pct1 suggest an elongation checkpoint for mRNA quality control.

作者信息

Pei Yi, Schwer Beate, Shuman Stewart

机构信息

Molecular Biology Program, Sloan-Kettering Institute, New York, New York 10021, USA.

出版信息

J Biol Chem. 2003 Feb 28;278(9):7180-8. doi: 10.1074/jbc.M211713200. Epub 2002 Dec 9.

Abstract

RNA polymerase II (pol II) is subject to an early elongation delay induced by negative factors Spt5/Spt4 and NELF, which is overcome by the positive factor P-TEFb (Cdk9/cyclin T), a protein kinase that phosphorylates the pol II C-terminal domain (CTD) and the transcription elongation factor Spt5. Although the rationale for this arrest and restart is unclear, recent studies suggest a connection to mRNA capping, which is coupled to transcription elongation via physical and functional interactions between the cap-forming enzymes, the CTD-PO(4), and Spt5. Here we identify a novel interaction between fission yeast RNA triphosphatase Pct1, the enzyme that initiates cap formation, and Schizosaccharomyces pombe Cdk9. The C-terminal segment of SpCdk9 comprises a Pct1-binding domain distinct from the N-terminal Cdk domain. We show that the Cdk domain interacts with S. pombe Pch1, a homolog of cyclin T, and that the purified recombinant SpCdk9/Pch1 heterodimer can phosphorylate both the pol II CTD and the C-terminal domain of S. pombe Spt5. We provide genetic evidence that SpCdk9 and Pch1 are functional orthologs of the Saccharomyces cerevisiae CTD kinase Bur1/Bur2, a putative yeast P-TEFb. Mutations of the kinase active site and the regulatory T-loop of SpCdk9 abolish its activity in vivo. Deleting the C-terminal domain of SpCdk9 causes a severe growth defect. We suggest a model whereby Spt5-induced arrest of early elongation ensures a temporal window for recruitment of the capping enzymes, which in turn attract Cdk9 to alleviate the arrest. This elongation checkpoint may avoid wasteful rounds of transcription of uncapped pre-mRNAs.

摘要

RNA聚合酶II(pol II)会受到由负调控因子Spt5/Spt4和NELF诱导的早期延伸延迟影响,而正调控因子P-TEFb(Cdk9/细胞周期蛋白T)可克服这种延迟,P-TEFb是一种蛋白激酶,能使pol II的C末端结构域(CTD)和转录延伸因子Spt5磷酸化。尽管这种停滞和重新启动的原理尚不清楚,但最近的研究表明其与mRNA加帽有关,mRNA加帽通过帽形成酶、CTD-PO(4)和Spt5之间的物理及功能相互作用与转录延伸相偶联。在此,我们鉴定了裂殖酵母RNA三磷酸酶Pct1(起始帽形成的酶)与粟酒裂殖酵母Cdk9之间的一种新型相互作用。SpCdk9的C末端片段包含一个与N末端Cdk结构域不同的Pct1结合结构域。我们发现Cdk结构域与粟酒裂殖酵母细胞周期蛋白T的同源物Pch1相互作用,并且纯化的重组SpCdk9/Pch1异二聚体能够使粟酒裂殖酵母pol II的CTD和Spt5的C末端结构域磷酸化。我们提供了遗传学证据,表明SpCdk9和Pch1是酿酒酵母CTD激酶Bur1/Bur2(一种假定的酵母P-TEFb)的功能直系同源物。SpCdk9激酶活性位点和调节性T环的突变会消除其在体内的活性。删除SpCdk9的C末端结构域会导致严重的生长缺陷。我们提出了一个模型,即Spt5诱导的早期延伸停滞确保了一个招募加帽酶的时间窗口,加帽酶进而吸引Cdk9来缓解停滞。这个延伸检查点可能避免了无帽前体mRNA的浪费性转录轮次。

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