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构成HIV-1逆转录酶dNTP结合口袋的氨基酸残基的功能分析。

Functional analysis of amino acid residues constituting the dNTP binding pocket of HIV-1 reverse transcriptase.

作者信息

Harris D, Kaushik N, Pandey P K, Yadav P N, Pandey V N

机构信息

Department of Biochemistry and Molecular Biology, University of Medicine and Dentistry-New Jersey Medical School, Newark, New Jersey 07103, USA.

出版信息

J Biol Chem. 1998 Dec 11;273(50):33624-34. doi: 10.1074/jbc.273.50.33624.

DOI:10.1074/jbc.273.50.33624
PMID:9837947
Abstract

In order to understand the functional implication of residues constituting the dNTP-binding pocket of human immunodeficiency virus type 1 reverse transcriptase, we performed site-directed mutagenesis at positions 65, 72, 113, 115, 151, 183, 184, and 219, and the resulting mutant enzymes were examined for their biochemical properties and nucleotide selectivity on RNA and DNA templates. Mutations at positions 65, 115, 183, 184, and 219 had negligible to moderate influence on the polymerase activity, while Ala substitution at positions 72 and 151 as well as substitution with Ala or Glu at position 113 severely impaired the polymerase function of the enzyme. The K219A, Y115F, and Q151M mutants had no influence on the fidelity; Y183A, Y183F, K65A, and Q151N mutants exhibited higher fidelity on both RNA and DNA templates, while Y115A was less error-prone selectively on a DNA template. Analysis of the three-dimensional model of the enzyme-template primer-dNTP ternary complex suggests that residues Tyr-183, Lys-65, and Gln-151 may have impact on the flexibility of the dNTP-binding pocket by virtue of their multiple interactions with the dNTP, template, primer, and other neighboring residues constituting the pocket. Recruitment of the correct versus incorrect nucleotides may be a function of the flexibility of this pocket. A relatively rigid pocket would provide greater stringency, resulting in higher fidelity of DNA synthesis in contrast to a flexible pocket. Substitution of a residue having multiple interactions with a residue having reduced interaction capability will alter the internal geometry of the pocket, thus directly influencing the fidelity.

摘要

为了了解构成人类免疫缺陷病毒1型逆转录酶dNTP结合口袋的氨基酸残基的功能意义,我们在第65、72、113、115、151、183、184和219位进行了定点诱变,并对所得突变酶的生化特性以及在RNA和DNA模板上的核苷酸选择性进行了检测。第65、115、183、184和219位的突变对聚合酶活性的影响可忽略不计或有中等影响,而第72和151位的丙氨酸替代以及第113位的丙氨酸或谷氨酸替代严重损害了该酶的聚合酶功能。K219A、Y115F和Q151M突变体对保真度没有影响;Y183A、Y183F、K65A和Q151N突变体在RNA和DNA模板上均表现出更高的保真度,而Y115A仅在DNA模板上选择性地降低了错误倾向。对酶-模板引物-dNTP三元复合物的三维模型分析表明,酪氨酸-183、赖氨酸-65和谷氨酰胺-151残基可能通过与dNTP、模板、引物以及构成口袋的其他相邻残基的多重相互作用,对dNTP结合口袋的灵活性产生影响。正确与错误核苷酸的掺入可能是该口袋灵活性的一种功能。与灵活的口袋相比,相对刚性的口袋将提供更高的严格性,从而导致DNA合成具有更高的保真度。用具有减少相互作用能力的残基替代具有多重相互作用的残基将改变口袋的内部几何结构,从而直接影响保真度。

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