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关于人类DNA聚合酶ι进行复制时对Hoogsteen碱基配对需求的生化证据。

Biochemical evidence for the requirement of Hoogsteen base pairing for replication by human DNA polymerase iota.

作者信息

Johnson Robert E, Prakash Louise, Prakash Satya

机构信息

Sealy Center for Molecular Science, University of Texas Medical Branch, 6.104 Blocker Medical Research Building, 11th and Mechanic Streets, Galveston, TX 77555-1061, USA.

出版信息

Proc Natl Acad Sci U S A. 2005 Jul 26;102(30):10466-71. doi: 10.1073/pnas.0503859102. Epub 2005 Jul 13.

Abstract

Because of the near geometric identity of Watson-Crick (W-C) GxC and AxT base pairs, a given DNA polymerase forms the four possible correct base pairs with nearly identical catalytic efficiencies. However, human DNA polymerase iota (Pol iota), a member of the Y family of DNA polymerases, exhibits a marked template specificity, being more efficient at incorporating the correct nucleotide opposite template purines than opposite pyrimidines. By using 7-deazaadenine and 7-deazaguanine as the templating residues, which disrupt Hoogsteen base pair formation, we show that, unlike the other DNA polymerases belonging to the A, B, or Y family, DNA synthesis by Pol iota is severely inhibited by these N7-modified bases. These observations provide biochemical evidence that, during normal DNA synthesis, template purines adopt a syn conformation in the Pol iota active site, enabling the formation of a Hoogsteen base pair with the incoming pyrimidine nucleotide. Additionally, mutational studies with Leu-62, which lies in close proximity to the templating residue in the Pol iota ternary complex, have indicated that both factors, steric constraints within the active site and the stability provided by the hydrogen bonds in the Hoogsteen base pair, contribute to the efficiency of correct nucleotide incorporation opposite template purines by Pol iota.

摘要

由于沃森-克里克(W-C)GxC和AxT碱基对在几何结构上近乎相同,特定的DNA聚合酶以近乎相同的催化效率形成四种可能的正确碱基对。然而,人类DNA聚合酶ι(Pol ι)是DNA聚合酶Y家族的成员,表现出显著的模板特异性,在模板嘌呤相对位置掺入正确核苷酸比在嘧啶相对位置更有效。通过使用7-脱氮腺嘌呤和7-脱氮鸟嘌呤作为模板残基,它们会破坏Hoogsteen碱基对的形成,我们发现,与属于A、B或Y家族的其他DNA聚合酶不同,Pol ι的DNA合成会受到这些N7修饰碱基的严重抑制。这些观察结果提供了生化证据,即在正常DNA合成过程中,模板嘌呤在Pol ι活性位点采取顺式构象,从而能够与进入的嘧啶核苷酸形成Hoogsteen碱基对。此外,对位于Pol ι三元复合物中与模板残基紧邻的Leu-62进行的突变研究表明,活性位点内的空间限制和Hoogsteen碱基对中氢键提供的稳定性这两个因素,都有助于Pol ι在模板嘌呤相对位置正确掺入核苷酸的效率。

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