The biosynthesis of RNA directed by an RNA template is a reaction that is unique to RNA viruses. The viral RNA-dependent RNA polymerases that catalyze this reaction all appear to share a major structural motif, suggesting that at least some aspect of their reaction mechanism is similar. Since mammalian host cells do not perform RNA-dependent RNA synthesis, this reaction presents an attractive target for the development of anti-viral chemotherapy. To pursue this strategy, it is essential to understand the structure and function of the enzyme that mediates transcription from RNA templates. The poliovirus RNA polymerase has been studied in several laboratories for a number of years, and it represents perhaps the best understood system among all of the positive strand RNA viruses. Nevertheless, the biochemistry of RNA replication for this virus has not been described. In this grant application, we propose to perform a detailed structural and functional analysis of the poliovirus enzyme, and to determine the roles that additional viral proteins contribute to the reaction mechanism. We have cloned the polymerase in two recombinant expression systems, and we have purified it to near homogeneity. We now propose to define its biochemical properties and have arranged a collaboration to determine its atomic structure by X-ray crystallographic analysis. We will also compare the structure and functional activities of a mutant enzyme that is encoded by an attenuated strain of virus. We plan to utilize both biochemical and genetic approaches to examine individual steps in the synthesis of minus strand RNA and in the addition of protein covalently linked to newly-synthesized RNA Chains. Lastly, studies will be initiated to identify the helicase activity responsible for unwinding RNA strands during synthesis, and to determine the function(s) of viral protein 2C in RNA synthesis.

Agency
National Institute of Health (NIH)
Institute
National Institute of Allergy and Infectious Diseases (NIAID)
Type
Research Project (R01)
Project #
5R01AI017386-17
Application #
2407730
Study Section
Virology Study Section (VR)
Project Start
1981-01-01
Project End
1998-05-31
Budget Start
1996-12-01
Budget End
1998-05-31
Support Year
17
Fiscal Year
1997
Total Cost
Indirect Cost
Name
University of California Irvine
Department
Biochemistry
Type
Schools of Arts and Sciences
DUNS #
161202122
City
Irvine
State
CA
Country
United States
Zip Code
92697
Bell, Y C; Semler, B L; Ehrenfeld, E (1999) Requirements for RNA replication of a poliovirus replicon by coxsackievirus B3 RNA polymerase. J Virol 73:9413-21
Graff, J; Richards, O C; Swiderek, K M et al. (1999) Hepatitis A virus capsid protein VP1 has a heterogeneous C terminus. J Virol 73:6015-23
Richards, O C; Ehrenfeld, E (1998) Effects of poliovirus 3AB protein on 3D polymerase-catalyzed reaction. J Biol Chem 273:12832-40
Jia, X Y; Van Eden, M; Busch, M G et al. (1998) trans-encapsidation of a poliovirus replicon by different picornavirus capsid proteins. J Virol 72:7972-7
Richards, O C; Ehrenfeld, E (1997) One of two NTP binding sites in poliovirus RNA polymerase required for RNA replication. J Biol Chem 272:23261-4
Parsley, T B; Towner, J S; Blyn, L B et al. (1997) Poly (rC) binding protein 2 forms a ternary complex with the 5'-terminal sequences of poliovirus RNA and the viral 3CD proteinase. RNA 3:1124-34
Teterina, N L; Bienz, K; Egger, D et al. (1997) Induction of intracellular membrane rearrangements by HAV proteins 2C and 2BC. Virology 237:66-77
Teterina, N L; Gorbalenya, A E; Egger, D et al. (1997) Poliovirus 2C protein determinants of membrane binding and rearrangements in mammalian cells. J Virol 71:8962-72
Richards, O C; Baker, S; Ehrenfeld, E (1996) Mutation of lysine residues in the nucleotide binding segments of the poliovirus RNA-dependent RNA polymerase. J Virol 70:8564-70
Jia, X Y; Tesar, M; Summers, D F et al. (1996) Replication of hepatitis A viruses with chimeric 5' nontranslated regions. J Virol 70:2861-8

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