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HIV-1逆转录酶Met-184突变体在进行性DNA合成、链转移和引物延伸方面的明显缺陷完全源于dNTP利用缺陷。

Apparent defects in processive DNA synthesis, strand transfer, and primer elongation of Met-184 mutants of HIV-1 reverse transcriptase derive solely from a dNTP utilization defect.

作者信息

Gao Lu, Hanson Mark Nils, Balakrishnan Mini, Boyer Paul L, Roques Bernard P, Hughes Stephen H, Kim Baek, Bambara Robert A

机构信息

Department of Biochemistry and Biophysics, University of Rochester Medical Center, Rochester, NY 14642, USA.

出版信息

J Biol Chem. 2008 Apr 4;283(14):9196-205. doi: 10.1074/jbc.M710148200. Epub 2008 Jan 24.

Abstract

The 2',3'-dideoxy-3'-thiacytidine drug-resistant M184I HIV-1 reverse transcriptase (RT) has been shown to synthesize DNA with decreased processivity compared with the wild-type RT. M184A displays an even more severe processivity defect. However, the basis of this decreased processivity has been unclear, and both primer-template binding and dNTP interaction defects have been proposed to account for it. In this study, we show that the altered properties of the M184I and M184A RT mutants that we have measured, including decreased processivity, a slower rate of primer extension, and increased strand transfer activity, can all be explained by a defect in dNTP utilization. These alterations are observed only at low dNTP concentration and vanish as the dNTP concentration is raised. The mutant RTs exhibit a normal dissociation rate from a DNA primer-RNA template while paused during synthesis. Slower than normal synthesis at physiological dNTP concentration, coupled with normal dissociation from the primer-template, results in the lowered processivity. The mutant RTs exhibit normal DNA 3'-end-directed and RNA 5'-end-directed ribonuclease H activity. The reduced rate of DNA synthesis causes an increase in the ratio of ribonuclease H to polymerase activity thereby promoting increased strand transfer. These latter results are consistent with an observed higher rate of recombination by HIV-1 strains with Met-184 mutations.

摘要

与野生型HIV-1逆转录酶(RT)相比,2',3'-二脱氧-3'-硫代胞苷耐药的M184I HIV-1逆转录酶合成DNA时的持续合成能力降低。M184A表现出更严重的持续合成能力缺陷。然而,这种持续合成能力降低的原因尚不清楚,有人提出引物-模板结合缺陷和dNTP相互作用缺陷都可能是其原因。在本研究中,我们发现,我们所检测到的M184I和M184A RT突变体的特性改变,包括持续合成能力降低、引物延伸速率减慢和链转移活性增加,都可以用dNTP利用缺陷来解释。这些改变仅在低dNTP浓度下观察到,随着dNTP浓度升高而消失。突变型RT在合成过程中暂停时,与DNA引物-RNA模板的解离速率正常。在生理dNTP浓度下合成速度比正常慢,再加上与引物-模板的正常解离,导致持续合成能力降低。突变型RT表现出正常的DNA 3'端定向和RNA 5'端定向核糖核酸酶H活性。DNA合成速率降低导致核糖核酸酶H与聚合酶活性的比值增加,从而促进链转移增加。后一个结果与观察到的具有Met-184突变的HIV-1毒株的重组率较高是一致的。

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