Efficient pyrophosphorolysis by a hepatitis B virus polymerase may be a primer-unblocking mechanism

底漆(化妆品) 核苷酸 聚合酶 焦磷酸盐 生物 乙型肝炎病毒 DNA聚合酶 逆转录酶 病毒学 体内 病毒复制 DNA 抗病毒药物 DNA合成 乙型肝炎 聚合酶链反应 生物化学 病毒 化学 遗传学 有机化学 基因
作者
Siniša Urban,Severin Urban,Karl P. Fischer,D. Lorne Tyrrell
出处
期刊:Proceedings of the National Academy of Sciences of the United States of America [National Academy of Sciences]
卷期号:98 (9): 4984-4989 被引量:28
标识
DOI:10.1073/pnas.091324398
摘要

Effective antiviral agents are thought to inhibit hepatitis B virus (HBV) DNA synthesis irreversibly by chain termination because reverse transcriptases (RT) lack an exonucleolytic activity that can remove incorporated nucleotides. However, since the parameters governing this inhibition are poorly defined, fully delineating the catalytic mechanism of the HBV-RT promises to facilitate the development of antiviral drugs for treating chronic HBV infection. To this end, pyrophosphorolysis and pyrophosphate exchange, two nonhydrolytic RT activities that result in the removal of newly incorporated nucleotides, were characterized by using endogenous avian HBV replication complexes assembled in vivo . Although these activities are presumed to be physiologically irrelevant for every polymerase examined, the efficiency with which they are catalyzed by the avian HBV-RT strongly suggests that it is the first known polymerase to catalyze these reactions under replicative conditions. The ability to remove newly incorporated nucleotides during replication has important biological and clinical implications: these activities may serve a primer-unblocking function in vivo . Analysis of pyrophosphorolysis on chain-terminated DNA revealed that the potent anti-HBV drug β- l -(−)-2′,3′-dideoxy-3′-thiacytidine (3TC) was difficult to remove by pyrophosphorolysis, in contrast to ineffective chain terminators such as ddC. This disparity may account for the strong antiviral efficacy of 3TC versus that of ddC. The HBV-RT pyrophosphorolytic activity may therefore be a novel determinant of antiviral drug efficacy, and could serve as a target for future antiviral drug therapy. The strong inhibitory effect of cytoplasmic pyrophosphate concentrations on viral DNA synthesis may also partly account for the apparent slow rate of HBV genome replication.

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