Comparative Analysis of Hepatitis B Virus Polymerase Sequences Required for Viral RNA Binding, RNA Packaging, and Protein Priming
暂无分享,去创建一个
[1] J. Tavis,et al. Sequences in the terminal protein and reverse transcriptase domains of the hepatitis B virus polymerase contribute to RNA binding and encapsidation , 2014, Journal of viral hepatitis.
[2] Scott A. Jones,et al. Noncompetitive Inhibition of Hepatitis B Virus Reverse Transcriptase Protein Priming and DNA Synthesis by the Nucleoside Analog Clevudine , 2013, Antimicrobial Agents and Chemotherapy.
[3] Scott A. Jones,et al. Hepatitis B virus reverse transcriptase: diverse functions as classical and emerging targets for antiviral intervention , 2013, Emerging Microbes & Infections.
[4] S. Sarafianos,et al. The Hepatitis B Virus Ribonuclease H Is Sensitive to Inhibitors of the Human Immunodeficiency Virus Ribonuclease H and Integrase Enzymes , 2013, PLoS pathogens.
[5] Scott A. Jones,et al. In Vitro Epsilon RNA-Dependent Protein Priming Activity of Human Hepatitis B Virus Polymerase , 2012, Journal of Virology.
[6] Scott A. Jones,et al. Protein-Primed Terminal Transferase Activity of Hepatitis B Virus Polymerase , 2012, Journal of Virology.
[7] Jianming Hu,et al. TP-RT Domain Interactions of Duck Hepatitis B Virus Reverse Transcriptase in cis and in trans during Protein-Primed Initiation of DNA Synthesis In Vitro , 2012, Journal of Virology.
[8] Scott A. Jones,et al. In Vitro Epsilon RNA-Dependent Protein Priming Activity of Human Hepatitis B Virus Polymerase , 2012, Journal of Virology.
[9] W. Ryu,et al. Hydrophobic residues of terminal protein domain of hepatitis B virus polymerase contribute to distinct steps in viral genome replication , 2011, FEBS letters.
[10] Sunju Park,et al. A conserved arginine residue in the terminal protein domain of hepatitis B virus polymerase is critical for RNA pre-genome encapsidation. , 2011, The Journal of general virology.
[11] E. De Clercq,et al. Antiviral Treatment of Chronic Hepatitis B Virus (HBV) Infections , 2010, Viruses.
[12] F. Zoulim,et al. Hepatitis B virus resistance to nucleos(t)ide analogues. , 2009, Gastroenterology.
[13] Matthew P. Badtke,et al. An interdomain RNA binding site on the hepadnaviral polymerase that is essential for reverse transcription. , 2009, Virology.
[14] Seahee Kim,et al. Four Conserved Cysteine Residues of the Hepatitis B Virus Polymerase Are Critical for RNA Pregenome Encapsidation , 2009, Journal of Virology.
[15] Li Lin,et al. RNA-protein interactions in hepadnavirus reverse transcription. , 2009, Frontiers in bioscience.
[16] M. Nassal,et al. Chaperones Activate Hepadnavirus Reverse Transcriptase by Transiently Exposing a C-Proximal Region in the Terminal Protein Domain That Contributes to ε RNA Binding , 2007, Journal of Virology.
[17] S. Wijmenga,et al. Thermodynamics and NMR studies on Duck, Heron and Human HBV encapsidation signals , 2007, Nucleic acids research.
[18] Jianming Hu,et al. Hepatitis B Virus Reverse Transcriptase and ε RNA Sequences Required for Specific Interaction In Vitro , 2006, Journal of Virology.
[19] Jianming Hu,et al. Hepatitis B virus reverse transcriptase and epsilon RNA sequences required for specific interaction in vitro. , 2006, Journal of virology.
[20] Matthew P. Badtke,et al. Identification of an Essential Molecular Contact Point on the Duck Hepatitis B Virus Reverse Transcriptase , 2005, Journal of Virology.
[21] D. Toft,et al. Requirement of Heat Shock Protein 90 for Human Hepatitis B Virus Reverse Transcriptase Function , 2004, Journal of Virology.
[22] Jianming Hu,et al. Heat Shock Protein 90-Independent Activation of Truncated Hepadnavirus Reverse Transcriptase , 2003, Journal of Virology.
[23] D. Toft,et al. In Vitro Reconstitution of Functional Hepadnavirus Reverse Transcriptase with Cellular Chaperone Proteins , 2002, Journal of Virology.
[24] Jianming Hu,et al. In Vitro Reconstitution of a Functional Duck Hepatitis B Virus Reverse Transcriptase: Posttranslational Activation by Hsp90 , 2000, Journal of Virology.
[25] W. Ryu,et al. Evidence that the 5′-End Cap Structure Is Essential for Encapsidation of Hepatitis B Virus Pregenomic RNA , 2000, Journal of Virology.
[26] R. Lanford,et al. Mapping of the Hepatitis B Virus Reverse Transcriptase TP and RT Domains by Transcomplementation for Nucleotide Priming and by Protein-Protein Interaction , 1999, Journal of Virology.
[27] J. Tavis,et al. The Duck Hepatitis B Virus Polymerase Is Activated by Its RNA Packaging Signal, ɛ , 1998, Journal of Virology.
[28] E. Brown,et al. In vitro activity of hepatitis B virus polymerase: requirement for distinct metal ions and the viral epsilon stem-loop. , 1998, The Journal of general virology.
[29] R. Lanford,et al. Transcomplementation of nucleotide priming and reverse transcription between independently expressed TP and RT domains of the hepatitis B virus reverse transcriptase , 1997, Journal of virology.
[30] C. Seeger,et al. Hepadnavirus assembly and reverse transcription require a multi‐component chaperone complex which is incorporated into nucleocapsids , 1997, The EMBO journal.
[31] J. Tavis,et al. Evidence for activation of the hepatitis B virus polymerase by binding of its RNA template , 1996, Journal of virology.
[32] L. Wiens,et al. Mutagenesis of a hepatitis B virus reverse transcriptase yields temperature-sensitive virus. , 1996, Virology.
[33] M. Nassal,et al. A bulged region of the hepatitis B virus RNA encapsidation signal contains the replication origin for discontinuous first-strand DNA synthesis , 1996, Journal of virology.
[34] C. Seeger,et al. Hsp90 is required for the activity of a hepatitis B virus reverse transcriptase. , 1996, Proceedings of the National Academy of Sciences of the United States of America.
[35] C. Seeger,et al. Expression and characterization of hepadnavirus reverse transcriptases. , 1996, Methods in enzymology.
[36] R. Lanford,et al. Nucleotide priming and reverse transcriptase activity of hepatitis B virus polymerase expressed in insect cells , 1995, Journal of virology.
[37] J. Tavis,et al. RNA sequences controlling the initiation and transfer of duck hepatitis B virus minus-strand DNA , 1995, Journal of virology.
[38] F. Zoulim,et al. Role of RNA in enzymatic activity of the reverse transcriptase of hepatitis B viruses , 1994, Journal of virology.
[39] J. Pollack,et al. Site-specific RNA binding by a hepatitis B virus reverse transcriptase initiates two distinct reactions: RNA packaging and DNA synthesis , 1994, Journal of virology.
[40] P. Marion,et al. Selected mutations of the duck hepatitis B virus P gene RNase H domain affect both RNA packaging and priming of minus-strand DNA synthesis , 1994, Journal of virology.
[41] J. Tavis,et al. Hepadnavirus reverse transcription initiates within the stem-loop of the RNA packaging signal and employs a novel strand transfer , 1994, Journal of virology.
[42] R. Bartenschlager,et al. Hepadnavirus P protein utilizes a tyrosine residue in the TP domain to prime reverse transcription , 1994, Journal of virology.
[43] F. Zoulim,et al. Reverse transcription in hepatitis B viruses is primed by a tyrosine residue of the polymerase , 1994, Journal of virology.
[44] M. Nassal,et al. The encapsidation signal on the hepatitis B virus RNA pregenome forms a stem-loop structure that is critical for its function. , 1993, Nucleic acids research.
[45] J. Pollack,et al. An RNA stem-loop structure directs hepatitis B virus genomic RNA encapsidation , 1993, Journal of virology.
[46] C. Seeger,et al. The reverse transcriptase of hepatitis B virus acts as a protein primer for viral DNA synthesis , 1992, Cell.
[47] R. Bartenschlager,et al. Hepadnaviral assembly is initiated by polymerase binding to the encapsidation signal in the viral RNA genome. , 1992, The EMBO journal.
[48] A. Faruqi,et al. Pregenomic RNA encapsidation analysis of eleven missense and nonsense polymerase mutants of human hepatitis B virus , 1991, Journal of virology.
[49] J. Pollack,et al. cis-acting sequences required for encapsidation of duck hepatitis B virus pregenomic RNA , 1991, Journal of virology.
[50] H. Varmus,et al. Effects of insertional and point mutations on the functions of the duck hepatitis B virus polymerase , 1990, Journal of virology.
[51] R. Bartenschlager,et al. The P gene product of hepatitis B virus is required as a structural component for genomic RNA encapsidation , 1990, Journal of virology.
[52] G. Radziwill,et al. Mutational analysis of the hepatitis B virus P gene product: domain structure and RNase H activity , 1990, Journal of virology.
[53] R. Bartenschlager,et al. The amino‐terminal domain of the hepadnaviral P‐gene encodes the terminal protein (genome‐linked protein) believed to prime reverse transcription. , 1988, The EMBO journal.
[54] T. Miyata,et al. Sequence homology between retroviral reverse transcriptase and putative polymerases of hepatitis B virus and cauliflower mosaic virus , 1983, Nature.
[55] J. Summers,et al. Replication of the genome of a hepatitis B-like virus by reverse transcription of an RNA intermediate , 1982, Cell.