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Review

The Hepatitis C Virus NS3 Protein: A Model RNA Helicase and Potential Drug Target

Department of Biochemistry and Molecular Biology, New York Medical College, Valhalla, NY 10595, USA
Curr. Issues Mol. Biol. 2007, 9(1), 1-20; https://doi.org/10.21775/cimb.009.001
Submission received: 1 September 2006 / Revised: 4 November 2006 / Accepted: 13 December 2006 / Published: 1 February 2007

Abstract

The C-terminal portion of hepatitis C virus (HCV) nonstructural protein 3 (NS3) forms a three domain polypeptide that possesses the ability to travel along RNA or single-stranded DNA (ssDNA) in a 3' to 5' direction. Fueled by ATP hydrolysis, this movement allows the protein to displace complementary strands of DNA or RNA and proteins bound to the nucleic acid. HCV helicase shares two domains common to other motor proteins, one of which appears to rotate upon ATP binding. Several models have been proposed to explain how this conformational change leads to protein movement and RNA unwinding, but no model presently explains all existing experimental data. Compounds recently reported to inhibit HCV helicase, which include numerous small molecules, RNA aptamers and antibodies, will be useful for elucidating the role of a helicase in positive-sense single-stranded RNA virus replication and might serve as templates for the design of novel antiviral drugs.
Keywords: hepatitis C virus; HCV; nonstructural protein 3; NS3; ATP hydrolysis hepatitis C virus; HCV; nonstructural protein 3; NS3; ATP hydrolysis

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MDPI and ACS Style

Frick, D.N. The Hepatitis C Virus NS3 Protein: A Model RNA Helicase and Potential Drug Target. Curr. Issues Mol. Biol. 2007, 9, 1-20. https://doi.org/10.21775/cimb.009.001

AMA Style

Frick DN. The Hepatitis C Virus NS3 Protein: A Model RNA Helicase and Potential Drug Target. Current Issues in Molecular Biology. 2007; 9(1):1-20. https://doi.org/10.21775/cimb.009.001

Chicago/Turabian Style

Frick, David N. 2007. "The Hepatitis C Virus NS3 Protein: A Model RNA Helicase and Potential Drug Target" Current Issues in Molecular Biology 9, no. 1: 1-20. https://doi.org/10.21775/cimb.009.001

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