Skip to content
Licensed Unlicensed Requires Authentication Published by De Gruyter June 1, 2005

Interfering with hepatitis C virus IRES activity using RNA molecules identified by a novel in vitro selection method

  • Cristina Romero-López , Alicia Barroso-delJesus , Elena Puerta-Fernández and Alfredo Berzal-Herranz
From the journal Biological Chemistry

Abstract

Hepatitis C virus (HCV) infection is one of the world's major health problems, and the identification of efficient HCV inhibitors is a major goal. Here we report the isolation of efficient anti-HCV internal ribosome entry site (IRES) RNA molecules identified by a new in vitro selection method. The newly developed procedure consists of two sequential steps that use distinct criteria for selection: selection for binding and selection for cleaving. The selection protocol was applied to a population of more than 1015 variants of an anti-hepatitis C virus ribozyme covalently linked to an aptamer motif. The ribozyme was directed against positions 357 to 369 of the HCV IRES, and the cleavage substrate was a 691-nucleotide-long RNA fragment that comprises the entire HCV IRES domain. After six selection cycles, seven groups of RNA variants were identified. A representative of each group was tested for its capacity to inhibit IRES activity using in vitro translation assays. All selected RNAs promoted significant inhibition, some by as much as 95%.

:

Corresponding author

References

Aldaz-Carroll, L., Tallet, B., Dausse, E., Yurchenko, L., and Toulmé, J.J. (2002). Apical loop-internal loop interactions: a new RNA-RNA recognition motif identified through in vitro selection against RNA hairpins of the hepatitis C virus mRNA. Biochemistry41, 5883–5893.10.1021/bi0121508Search in Google Scholar PubMed

Barroso-delJesus, A., Tabler, M., and Berzal-Herranz, A. (1999). Comparative kinetic analysis of structural variants of the hairpin ribozyme reveals further potential to optimize its catalytic performance. Antisense Nucleic Acid Drug Dev.9, 433–440.10.1089/oli.1.1999.9.433Search in Google Scholar PubMed

Breaker, R.R. (1997). In vitro selection of catalytic polynucleotides. Chem. Rev.97, 371–390.10.1021/cr960008kSearch in Google Scholar PubMed

Bukh, J., Purcell, R. H., and Miller, R. H. (1992). Sequence analysis of the 5′ noncoding region of hepatitis C virus. Proc. Natl. Acad. Sci. USA89, 4942–4946.10.1073/pnas.89.11.4942Search in Google Scholar PubMed PubMed Central

Choo, Q. L., Kuo, G., Weiner, A. J., Overby, L. R., Bradley, D.W., and Houghton, M. (1989). Isolation of a cDNA clone derived from a blood-borne non-A, non-B viral hepatitis genome. Science244, 359–362.10.1126/science.2523562Search in Google Scholar PubMed

Da Rocha Gomes, S., Dausse, E. and Toulmé, J.-J. (2004). Determinants of apical loop-internal loop RNA-RNA interactions involving the HCV IRES. Biochem. Biophys. Res. Commun.322, 820–826.10.1016/j.bbrc.2004.07.185Search in Google Scholar PubMed

Dev, A., Patel, K., and McHutchison, J.G. (2004). New therapies for chronic hepatitis C virus infection. Curr. Gastroenterol. Rep.6, 77–86.10.1007/s11894-004-0030-5Search in Google Scholar PubMed

Honda, M., Ping, L.H., Rijnbrand, R.C., Amphlett, E., Clarke, B., Rowlands, D., and Lemon, S.M. (1996). Structural requirements for initiation of translation by internal ribosome entry within genome-length hepatitis C virus RNA. Virology222, 31–42.10.1006/viro.1996.0395Search in Google Scholar PubMed

Honda, M., Beard, M.R., Ping, L.H., and Lemon, S.M. (1999). A phylogenetically conserved stem-loop structure at the 5′ border of the internal ribosome entry site of hepatitis C virus is required for cap-independent viral translation. J. Virol.73, 1165–1174.10.1128/JVI.73.2.1165-1174.1999Search in Google Scholar PubMed PubMed Central

Inchauspe, G., Abe, K., Zebedee, S., Nasoff, M., and Prince, A.M. (1991). Use of conserved sequences from hepatitis C virus for the detection of viral RNA in infected sera by polymerase chain reaction. Hepatology14, 595–600.10.1002/hep.1840140404Search in Google Scholar

Kikuchi, K., Umehara, T., Fukuda, K., Hwang, J., Kuno, A., Hasegawa, T., and Nishikawa, S. (2003). RNA aptamers targeted to domain II of hepatitis C virus IRES that bind to its apical loop region. J. Biochem. (Tokyo)133, 263–270.10.1093/jb/mvg036Search in Google Scholar

Lieber, A., He, C.Y., Polyak, S.J., Gretch, D.R., Barr, D., and Kay, M.A. (1996). Elimination of hepatitis C virus RNA in infected human hepatocytes by adenovirus-mediated expression of ribozymes. J. Virol.70, 8782–8791.10.1128/jvi.70.12.8782-8791.1996Search in Google Scholar

Pérez-Ruiz, M., Torres, C., García-López, P.A., Ruiz-Extremera, A., Salmerón, J., and Berzal-Herranz, A. (1997). Determination of HCV RNA concentration by direct quantitation of the products from a single RT-PCR. J. Virol. Methods69, 113–124.10.1016/S0166-0934(97)00155-9Search in Google Scholar

Puerta-Fernández, E., Barroso-delJesus, A., Romero-López, C., and Berzal-Herranz, A. (2003a). HIV-1 TAR as anchoring site for optimized catalytic RNAs. Biol. Chem.384, 343–350.10.1515/BC.2003.040Search in Google Scholar

Puerta-Fernández, E., Romero-López, C., Barroso-delJesus, A., and Berzal-Herranz, A. (2003b). Ribozymes: recent advances in the development of RNA tools. FEMS Microbiol. Rev.27, 75–97.10.1016/S0168-6445(03)00020-2Search in Google Scholar

Reynolds, J.E., Kaminski, A., Kettinen, H.J., Grace, K., Clarke, B.E., Carroll, A.R., Rowlands, D.J., and Jackson, R.J. (1995). Unique features of internal initiation of hepatitis C virus RNA translation. EMBO J.14, 6010–6020.10.1002/j.1460-2075.1995.tb00289.xSearch in Google Scholar

Tallet-López, B., Aldaz-Carroll, L., Chabas, S., Dausse, E., Staedel, C., and Toulmé, J.J. (2003). Antisense oligonucleotides targeted to the domain IIId of the hepatitis C virus IRES compete with 40S ribosomal subunit binding and prevent in vitro translation. Nucleic Acids Res.31, 734–742.10.1093/nar/gkg139Search in Google Scholar

Theissen, G., Richter, A., and Lukacs, N. (1989). Degree of biotinylation in nucleic acids estimated by a gel retardation assay. Anal. Biochem.179, 98–105.10.1016/0003-2697(89)90207-8Search in Google Scholar

Wakita, T., Moradpour, D., Tokushihge, K., and Wands, J.R. (1999). Antiviral effects of antisense RNA on hepatitis C virus RNA translation and expression. J. Med. Virol.57, 217–222.10.1002/(SICI)1096-9071(199903)57:3<217::AID-JMV1>3.0.CO;2-XSearch in Google Scholar

Wang, T.H., Rijnbrand, R.C., and Lemon, S.M. (2000). Core protein-coding sequence, but not core protein, modulates the efficiency of cap-independent translation directed by the internal ribosome entry site of hepatitis C virus. J. Virol.74, 11347–11358.10.1128/JVI.74.23.11347-11358.2000Search in Google Scholar

Wilson, D.S., and Szostak, J.W. (1999). In vitro selection of functional nucleic acids. Annu. Rev. Biochem.68, 611–647.10.1146/annurev.biochem.68.1.611Search in Google Scholar PubMed

Published Online: 2005-06-01
Published in Print: 2005-02-01

©2005 by Walter de Gruyter Berlin New York

Downloaded on 2.6.2024 from https://www.degruyter.com/document/doi/10.1515/BC.2005.023/html
Scroll to top button