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RNA 聚合酶 II 转录的保真度:Rpb9 在错误检测和校对中的作用。

Fidelity of RNA polymerase II transcription: Role of Rpb9 [corrected] in error detection and proofreading.

机构信息

Department of Biochemistry and Biophysics, Texas A&M University , College Station, Texas 77843-2128, United States.

出版信息

Biochemistry. 2013 Nov 5;52(44):7807-17. doi: 10.1021/bi4009566. Epub 2013 Oct 24.

DOI:10.1021/bi4009566
PMID:24099331
Abstract

The role of the small RNA polymerase II subunit Rpb9 in transcriptional proofreading was assessed in vitro. Transcription elongation complexes in which the 3' end of the RNA is not complementary to the DNA template have a dramatically reduced rate of elongation, which provides a fidelity checkpoint at which the error can be removed. The efficiency of such proofreading depends on competing rates of error propagation (extending the RNA chain without removing the error) and error excision, a process that is facilitated by TFIIS. In the absence of Rpb9, the rate of error propagation is increased by 2- to 3-fold in numerous sequence contexts, compromising the efficiency of proofreading. In addition, the rate and extent of TFIIS-mediated error excision is also significantly compromised in the absence of Rpb9. In at least some sequence contexts, Rpb9 appears to enhance TFIIS-mediated error excision by facilitating efficient formation of a conformation necessary for RNA cleavage. If a transcription error is propagated by addition of a nucleotide to the mismatched 3' end, then the rate of further elongation increases but remains much slower than that of a complex with a fully base-paired RNA, which provides a second potential fidelity checkpoint. The absence of Rpb9 also affects both error propagation and TFIIS-mediated error excision at this potential checkpoint in a manner that compromises transcriptional fidelity. In contrast, no effects of Rpb9 on NTP selectivity were observed.

摘要

我们评估了小 RNA 聚合酶 II 亚基 Rpb9 在转录校对中的作用。在体外。RNA 的 3' 端与 DNA 模板不互补的转录延伸复合物的延伸率显著降低,这为保真度检查点提供了一个可以消除错误的机会。这种校对的效率取决于错误传播(在不消除错误的情况下延伸 RNA 链)和错误切除的竞争速率,后者由 TFIIS 促进。在没有 Rpb9 的情况下,在许多序列环境中,错误传播的速率增加了 2 到 3 倍,从而降低了校对的效率。此外,在没有 Rpb9 的情况下,TFIIS 介导的错误切除的速率和程度也显著降低。在至少一些序列环境中,Rpb9 似乎通过促进形成 RNA 切割所需的构象来增强 TFIIS 介导的错误切除。如果通过在不匹配的 3' 端添加核苷酸来传播转录错误,则进一步延伸的速率增加,但仍远低于具有完全碱基配对 RNA 的复合物的延伸速率,这为第二个潜在的保真度检查点提供了条件。在这种潜在的检查点处,Rpb9 的缺失也会影响错误传播和 TFIIS 介导的错误切除,从而损害转录保真度。相比之下,没有观察到 Rpb9 对 NTP 选择性的影响。

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