Molecular mechanism of a thumb domain hepatitis C virus nonnucleoside RNA-dependent RNA polymerase inhibitor

被引:45
|
作者
Howe, Anita Y. M.
Cheng, Huiming
Thompson, Ian
Chunduru, Srinivas K.
Herrmann, Steve
O'Connell, John
Agarwal, Atul
Chopra, Rajiv
Del Vecchio, Alfred M.
机构
[1] Wyeth Res, Infect Dis, Collegeville, PA 19426 USA
[2] Wyeth Res, Biol Technol & Struct Biol, Cambridge, MA 02140 USA
[3] ViroPharma Inc, Exton, PA 19341 USA
关键词
D O I
10.1128/AAC.00365-06
中图分类号
Q93 [微生物学];
学科分类号
071005 ; 100705 ;
摘要
A new pyranoindole class of small-molecule inhibitors was studied to understand viral resistance and elucidate the mechanism of inhibition in hepatitis C virus (HCV) replication. HCV replicon variants less susceptible to inhibition by the pyranoindoles were selected in Huh-7 hepatoma cells. Variant replicons contained clusters of mutations in the NS5B polymerase gene corresponding to the drug-binding pocket on the surface of the thumb domain identified by X-ray crystallography. An additional cluster of mutations present in part of a unique P-hairpin loop was also identified. The mutations were characterized by using recombinant replicon variants engineered with the corresponding amino acid substitutions. A single mutation (L419M or M423V), located at the pyranoindole-binding site, resulted in an 8- to 10-fold more resistant replicon, while a combination mutant (T19P, M71V, A338V, M423V, A442T) showed a 17-fold increase in drug resistance. The results of a competition experiment with purified NS5B enzyme with GTP showed that the inhibitory activity of the pyranoindole inhibitor was not affected by GTP at concentrations up to 250 mu M. Following de novo, initiation, the presence of a pyranoindole inhibitor resulted in the accumulation of a five-nucleotide oligomer, with a concomitant decrease in higher-molecular-weight products. The results of these studies have confirmed that pyranoindoles target the NS5B polymerase through interactions at the thumb domain. This inhibition is independent of GTP concentrations and is likely mediated by an allosteric blockade introduced by the inhibitor during the transition to RNA elongation after the formation of an initiation complex.
引用
收藏
页码:4103 / 4113
页数:11
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