This proposal intends to investigate both structural and functional aspects of the ribonucleaseH (RNaseH) activity of HIV RT and evaluate its potential as a target for chemotherapy. Using a novel metal chelate affinity resin, several forms of the genetically engineered 15 kDa RNaseH domain (p15 RNaseH) will be purified and characterized. In the first instance, p15 RNaseH will be subjected to biophysical analyses by both X-ray crystallography and low angle neutron scattering, in an attempt to define the structure of the isolated domain. The nucleolytic properties of HIV-1 RT/RNaseH will be evaluated with a series of point mutants whose RNaseH capacity has been either totally or partially impaired by in vitro site- directed mutagenesis. Using high resolution gel electrophoresis, experiments discriminating between the exo- and endonucleolytic activities will be carried out on RNaseH, as either the purified domain, p66 RT/RNaseH homodimer or p66/p51 RT/RNaseH heterodimer. The interaction of recombinant p15 RNaseH with model DNA/RNA hybrids substrates is proposed, in an attempt to better understand how the enzyme interacts with each nucleic acid component of the hybrid. These studies will provide valuable information for later biophysical studies to characterize the structure of RNaseH complexed with a defined DNA/RNA hybrid. In an attempt to elucidate potential interdependence between the polymerising and Rnaseh domains of HIV RT, chimaeric RT/RNaseH molecules will be constructed between HIV-1 RT and portions of either the HIV-2 or equine infectious anaemia virus (EIAV) enzyme. These chimaerae will be analyzed for their polymerase and Rnaseh properties, as well as capacity to reconstitute into enzymatically active heterodimer with the 51 kDa HIV-1 RT subunit. Small amino acid insertions will also be introduced at the junction between the polymerase and Rnaseh domains of p66 RT to determine if these can be spatially separated without impairment of enzymatic activity. Finally, in order to evaluate the requirement of p15 Rnaseh for viral replication, mutant proviruses will be constructed which fail to mature the RNaseH domain from p66 RT, and their infectivity determined.

Agency
National Institute of Health (NIH)
Institute
National Institute of General Medical Sciences (NIGMS)
Type
Research Project (R01)
Project #
5R01GM046623-03
Application #
2184117
Study Section
AIDS and Related Research Study Section 4 (ARRD)
Project Start
1991-08-01
Project End
1995-07-31
Budget Start
1993-08-01
Budget End
1995-07-31
Support Year
3
Fiscal Year
1993
Total Cost
Indirect Cost
Name
Case Western Reserve University
Department
Internal Medicine/Medicine
Type
Schools of Medicine
DUNS #
077758407
City
Cleveland
State
OH
Country
United States
Zip Code
44106
Arts, E J; Le Grice, S F (1998) Interaction of retroviral reverse transcriptase with template-primer duplexes during replication. Prog Nucleic Acid Res Mol Biol 58:339-93
Ghosh, M; Howard, K J; Cameron, C E et al. (1995) Truncating alpha-helix E' of p66 human immunodeficiency virus reverse transcriptase modulates RNase H function and impairs DNA strand transfer. J Biol Chem 270:7068-76
Cirino, N M; Cameron, C E; Smith, J S et al. (1995) Divalent cation modulation of the ribonuclease functions of human immunodeficiency virus reverse transcriptase. Biochemistry 34:9936-43
Wohrl, B M; Tantillo, C; Arnold, E et al. (1995) An expanded model of replicating human immunodeficiency virus reverse transcriptase. Biochemistry 34:5343-56
Wohrl, B M; Georgiadis, M M; Telesnitsky, A et al. (1995) Footprint analysis of replicating murine leukemia virus reverse transcriptase. Science 267:96-9
Le Grice, S F; Cameron, C E; Benkovic, S J (1995) Purification and characterization of human immunodeficiency virus type 1 reverse transcriptase. Methods Enzymol 262:130-44
Wohrl, B M; Howard, K J; Jacques, P S et al. (1994) Alternative modes of polymerization distinguish the subunits of equine infectious anemia virus reverse transcriptase. J Biol Chem 269:8541-8
Cirino, N M; Kalayjian, R C; Jentoft, J E et al. (1993) Fluorimetric analysis of recombinant p15 HIV-1 ribonuclease H. J Biol Chem 268:14743-9
Ben-Artzi, H; Zeelon, E; Le-Grice, S F et al. (1992) Characterization of the double stranded RNA dependent RNase activity associated with recombinant reverse transcriptases. Nucleic Acids Res 20:5115-8