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与DNA复合的人类DNA聚合酶β的晶体结构:对催化机制、持续合成能力和保真度的影响

Crystal structures of human DNA polymerase beta complexed with DNA: implications for catalytic mechanism, processivity, and fidelity.

作者信息

Pelletier H, Sawaya M R, Wolfle W, Wilson S H, Kraut J

机构信息

Department of Chemistry and Biochemistry, University of California, San Diego, La Jolla 92093-0506, USA.

出版信息

Biochemistry. 1996 Oct 1;35(39):12742-61. doi: 10.1021/bi952955d.

Abstract

Mammalian DNA polymerase beta (pol beta) is a small (39 kDa) DNA gap-filling enzyme that comprises an amino-terminal 8-kDa domain and a carboxy-terminal 31-kDa domain. In the work reported here, crystal structures of human pol beta complexed with blunt-ended segments of DNA show that, although the crystals belong to a different space group, the DNA is nevertheless bound in the pol beta binding channel in the same way as the DNA in previously reported structures of rat pol beta complexed with a template-primer and ddCTP [Pelletier, H., Sawaya, M. R., Kumar, A., Wilson, S. H., & Kraut, J. (1994) Science 264, 1891-1903]. The 8-kDa domain is in one of three previously observed positions relative to the 31-kDa domain, suggesting that the 8-kDa domain may assume only a small number of stable conformations. The thumb subdomain is in a more open position in the human pol beta-DNA binary complex than it is in the rat pol beta-DNA-ddCTP ternary complex, and a closing thumb upon nucleotide binding could represent the rate-limiting conformational change that has been observed in pre-steady-state kinetic studies. Intermolecular contacts between the DNA and the 8-kDa domain of a symmetry-related pol beta molecule reveal a plausible binding site on the 8-kDa domain for the downstream oligonucleotide of a gapped-DNA substrate; in addition to a lysine-rich binding pocket that accommodates a 5'-PO4 end group, the 8-kDa domain also contains a newly discovered helix-hairpin-helix (HhH) motif that binds to DNA in the same way as does a structurally and sequentially homologous HhH motif in the 31-kDa domain. DNA binding by both HhH motifs is facilitated by a metal ion. In that HhH motifs have been identified in other DNA repair enzymes and DNA polymerases, the HhH-DNA interactions observed in pol beta may be applicable to a broad range of DNA binding proteins. The sequence similarity between the HhH motif of endonuclease III from Escherichia coli and the HhH motif of the 8-kDa domain of pol beta is particularly striking in that all of the conserved residues are clustered in one short sequence segment, LPGVGXK, where LPGV corresponds to a type II beta-turn (the hairpin turn), and GXK corresponds to a part of the HhH motif that is proposed to be critical for DNA binding and catalysis for both enzymes. These results suggest that endonuclease III and the 8-kDa domain of pol beta may employ a similar mode of DNA binding and may have similar catalytic mechanisms for their respective DNA lyase activities. A model for productive binding of pol beta to a gapped-DNA substrate requires a 90 degrees bend in the single-stranded template, which could enhance nucleotide selectivity during DNA repair or replication.

摘要

哺乳动物DNA聚合酶β(polβ)是一种小分子量(39 kDa)的DNA缺口填充酶,由一个氨基末端8 kDa结构域和一个羧基末端31 kDa结构域组成。在本文报道的研究中,人polβ与DNA平端片段形成的晶体结构表明,尽管晶体属于不同的空间群,但DNA仍以与先前报道的大鼠polβ与模板引物及ddCTP形成的复合物结构中的DNA相同的方式结合在polβ结合通道中[佩尔蒂埃,H.,萨瓦亚,M. R.,库马尔,A.,威尔逊,S. H.,&克劳特,J.(1994年)《科学》264,1891 - 1903]。8 kDa结构域相对于31 kDa结构域处于先前观察到的三个位置之一,这表明8 kDa结构域可能仅呈现少量稳定构象。在人polβ - DNA二元复合物中,拇指亚结构域比在大鼠polβ - DNA - ddCTP三元复合物中处于更开放的位置,并且核苷酸结合时拇指结构的闭合可能代表了在稳态前动力学研究中观察到的限速构象变化。DNA与对称相关polβ分子的8 kDa结构域之间的分子间接触揭示了8 kDa结构域上一个可能的缺口DNA底物下游寡核苷酸结合位点;除了容纳5'-磷酸末端基团的富含赖氨酸的结合口袋外,8 kDa结构域还包含一个新发现的螺旋 - 发夹 - 螺旋(HhH)基序,它与31 kDa结构域中结构和序列同源的HhH基序以相同方式结合DNA。两个HhH基序与DNA的结合都由金属离子促进。鉴于在其他DNA修复酶和DNA聚合酶中已鉴定出HhH基序,在polβ中观察到的HhH - DNA相互作用可能适用于广泛的DNA结合蛋白。大肠杆菌核酸内切酶III的HhH基序与polβ的8 kDa结构域的HhH基序之间的序列相似性特别显著,因为所有保守残基都聚集在一个短序列片段LPGVGXK中,其中LPGV对应于II型β - 转角(发夹转角),而GXK对应于HhH基序中被认为对两种酶的DNA结合和催化至关重要的一部分。这些结果表明核酸内切酶III和polβ的8 kDa结构域可能采用相似的DNA结合模式,并且对于它们各自的DNA裂解酶活性可能具有相似的催化机制。polβ与缺口DNA底物有效结合的模型需要单链模板有一个90度的弯曲,这可以在DNA修复或复制过程中提高核苷酸选择性。

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