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本文引用的文献

1
Serine-7 but not serine-5 phosphorylation primes RNA polymerase II CTD for P-TEFb recognition.丝氨酸-7而非丝氨酸-5的磷酸化使 RNA 聚合酶 II CTD 为 P-TEFb 识别做好准备。
Nat Commun. 2012 May 15;3:842. doi: 10.1038/ncomms1846.
2
RNAP II CTD phosphorylated on threonine-4 is required for histone mRNA 3' end processing.RNAP II CTD 上的苏氨酸-4 磷酸化对于组蛋白 mRNA 3' 端加工是必需的。
Science. 2011 Nov 4;334(6056):683-6. doi: 10.1126/science.1206034.
3
The Cyclin K/Cdk12 complex maintains genomic stability via regulation of expression of DNA damage response genes.周期蛋白 K/细胞周期蛋白依赖性激酶 12 复合物通过调控 DNA 损伤反应基因的表达来维持基因组稳定性。
Genes Dev. 2011 Oct 15;25(20):2158-72. doi: 10.1101/gad.16962311.
4
The initiation factor TFE and the elongation factor Spt4/5 compete for the RNAP clamp during transcription initiation and elongation.转录起始和延伸过程中,起始因子 TFE 和延伸因子 Spt4/5 竞争与 RNA 聚合酶夹结合。
Mol Cell. 2011 Jul 22;43(2):263-74. doi: 10.1016/j.molcel.2011.05.030.
5
Deciphering the RNA polymerase II CTD code in fission yeast.解析裂殖酵母 RNA 聚合酶 II CTD 密码
Mol Cell. 2011 Jul 22;43(2):311-8. doi: 10.1016/j.molcel.2011.05.024. Epub 2011 Jun 23.
6
Gcn5 facilitates Pol II progression, rather than recruitment to nucleosome-depleted stress promoters, in Schizosaccharomyces pombe.Gcn5 促进 Pol II 向前移动,而不是招募到核小体缺失的应激启动子,在裂殖酵母中。
Nucleic Acids Res. 2011 Aug;39(15):6369-79. doi: 10.1093/nar/gkr255. Epub 2011 Apr 22.
7
Architecture of the RNA polymerase-Spt4/5 complex and basis of universal transcription processivity.RNA 聚合酶-Spt4/5 复合物的结构和通用转录延伸性的基础。
EMBO J. 2011 Apr 6;30(7):1302-10. doi: 10.1038/emboj.2011.64. Epub 2011 Mar 8.
8
RNA polymerase and transcription elongation factor Spt4/5 complex structure.RNA 聚合酶和转录延伸因子 Spt4/5 复合物结构。
Proc Natl Acad Sci U S A. 2011 Jan 11;108(2):546-50. doi: 10.1073/pnas.1013828108. Epub 2010 Dec 27.
9
CDK12 is a transcription elongation-associated CTD kinase, the metazoan ortholog of yeast Ctk1.CDK12 是一种转录延伸相关的 CTD 激酶,是酵母 Ctk1 的后生动物直系同源物。
Genes Dev. 2010 Oct 15;24(20):2303-16. doi: 10.1101/gad.1968210.
10
Gene-specific RNA polymerase II phosphorylation and the CTD code.基因特异性 RNA 聚合酶 II 的磷酸化和 CTD 密码。
Nat Struct Mol Biol. 2010 Oct;17(10):1279-86. doi: 10.1038/nsmb.1913. Epub 2010 Sep 12.

裂殖酵母 Cdk9(P-TEFb)的不同结构域对于帽酶的募集和被引物(Ser7 磷酸化)的 Rpb1 C 端结构域底物的识别是必需的。

Separate domains of fission yeast Cdk9 (P-TEFb) are required for capping enzyme recruitment and primed (Ser7-phosphorylated) Rpb1 carboxyl-terminal domain substrate recognition.

机构信息

Department of Structural and Chemical Biology, Mount Sinai School of Medicine, New York, New York, USA.

出版信息

Mol Cell Biol. 2012 Jul;32(13):2372-83. doi: 10.1128/MCB.06657-11. Epub 2012 Apr 16.

DOI:10.1128/MCB.06657-11
PMID:22508988
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3434489/
Abstract

In fission yeast, discrete steps in mRNA maturation and synthesis depend on a complex containing the 5'-cap methyltransferase Pcm1 and Cdk9, which phosphorylates the RNA polymerase II (Pol II) carboxyl-terminal domain (CTD) and the processivity factor Spt5 to promote transcript elongation. Here we show that a Cdk9 carboxyl-terminal extension, distinct from the catalytic domain, mediates binding to both Pcm1 and the Pol II CTD. Removal of this segment diminishes Cdk9/Pcm1 chromatin recruitment and Spt5 phosphorylation in vivo and leads to slow growth and hypersensitivity to cold temperature, nutrient limitation, and the IMP dehydrogenase inhibitor mycophenolic acid (MPA). These phenotypes, and the Spt5 phosphorylation defect, are suppressed by Pcm1 overproduction, suggesting that normal transcript elongation and gene expression depend on physical linkage between Cdk9 and Pcm1. The extension is dispensable, however, for recognition of CTD substrates "primed" by Mcs6 (Cdk7). On defined peptide substrates in vitro, Cdk9 prefers CTD repeats phosphorylated at Ser7 over unmodified repeats. In vivo, Ser7 phosphorylation depends on Mcs6 activity, suggesting a conserved mechanism, independent of chromatin recruitment, to order transcriptional CDK functions. Therefore, fission yeast Cdk9 comprises a catalytic domain sufficient for primed substrate recognition and a multivalent recruitment module that couples transcription with capping.

摘要

在裂殖酵母中,mRNA 成熟和合成的离散步骤依赖于一种包含 5'-帽甲基转移酶 Pcm1 和 Cdk9 的复合物,该复合物可磷酸化 RNA 聚合酶 II(Pol II)羧基末端结构域(CTD)和延伸因子 Spt5,以促进转录延伸。在这里,我们表明 Cdk9 的羧基末端延伸与催化结构域不同,可介导与 Pcm1 和 Pol II CTD 的结合。该片段的缺失会减少 Cdk9/Pcm1 染色质募集和体内 Spt5 磷酸化,并导致生长缓慢和对冷温度、营养限制以及 IMP 脱氢酶抑制剂霉酚酸(MPA)的敏感性增加。这些表型和 Spt5 磷酸化缺陷可被 Pcm1 过表达所抑制,这表明正常的转录延伸和基因表达依赖于 Cdk9 和 Pcm1 之间的物理连接。然而,该延伸对于 Cdk7 预先标记的 CTD 底物的识别是可有可无的。在体外的定义肽底物上,Cdk9 优先选择 Ser7 磷酸化的 CTD 重复序列而不是未修饰的重复序列。在体内,Ser7 磷酸化依赖于 Mcs6 活性,这表明存在一种保守机制,独立于染色质募集,以调节转录 CDK 功能。因此,裂殖酵母 Cdk9 由一个催化结构域组成,该结构域足以识别预先标记的底物,并且具有多价募集模块,可将转录与加帽偶联。