Home LiteratureArticle Details
PMID: 15542664 Published · ppublish English Journal Article Research Support, U.S. Gov't, P.H.S.

Requirement of heat shock protein 90 for human hepatitis B virus reverse transcriptase function.

Journal of virology ·Vol. 78 ·No. 23 ·2004-12-00 ·Pages 13122-31

Hu J, Flores D, Toft D, Wang X, Nguyen D

Abstract

The initiation of reverse transcription and nucleocapsid assembly in hepatitis B virus (HBV) depends on the specific recognition of an RNA signal (the packaging signal, epsilon) on the pregenomic RNA (pgRNA) by the viral reverse transcriptase (RT). RT-epsilon interaction in the duck hepatitis B virus (DHBV) was recently shown to require the molecular chaperone complex, the heat shock protein 90 (Hsp90). However, the requirement for RT-epsilon interaction in the human HBV has remained unknown due to the inability to obtain a purified RT protein active in specific epsilon binding. We now report that Hsp90 is also required for HBV RT-epsilon interaction. Inhibition of Hsp90 led to diminished HBV pgRNA packaging into nucleocapsids in cells, which depends on RT-epsilon interaction. Furthermore, using truncated HBV RT proteins purified from bacteria and five purified Hsp90 chaperone factors, we have developed an in vitro RT-epsilon binding assay. Our results demonstrate that Hsp90, in a dynamic process that was dependent on ATP hydrolysis, facilitated RT-epsilon interaction in HBV, as in DHBV. Specific epsilon binding required sequences from both the amino-terminal terminal protein and the carboxy-terminal RT domain. Only the cognate HBV epsilon, but not the DHBV epsilon, could bind the HBV RT proteins. Furthermore, the internal bulge, but not the apical loop, of epsilon was required for RT binding. The establishment of a defined in vitro reconstitution system has now paved the way for future biochemical and structural studies to elucidate the mechanisms of RT-epsilon interaction and chaperone activation.

MeSH Terms
DNA Replication HSP90 Heat-Shock Proteins/physiology Hepatitis B Virus, Duck/enzymology Hepatitis B virus/enzymology Humans RNA-Directed DNA Polymerase/chemistry,physiology Virus Assembly
Chemicals
HSP90 Heat-Shock Proteins RNA-Directed DNA Polymerase
Authors & Affiliations
5 authors, click to expand affiliations / ORCID
Hu Jianming
Department of Microbiology and Immunology-H107, The Pennsylvania State University, 500 University Dr., Hershey, PA 17033, USA. juh13@psu.edu
Flores Dafna
Toft David
Wang Xingtai
Nguyen David
References (63)
63 references, click to expand
  1. The assembly of progesterone receptor-hsp90 complexes using purified proteins.
    J Biol Chem. 1998 Dec 4;273(49):32973-9 PMID: 9830049
  2. Mapping of the hepatitis B virus reverse transcriptase TP and RT domains by transcomplementation for nucleotide priming and by protein-protein interaction.
    J Virol. 1999 Mar;73(3):1885-93 PMID: 9971767
  3. In vitro reconstitution of a functional duck hepatitis B virus reverse transcriptase: posttranslational activation by Hsp90.
    J Virol. 2000 Dec;74(24):11447-55 PMID: 11090140
  4. Human hepatitis B virus polymerase interacts with the molecular chaperonin Hsp60.
    J Virol. 2001 Aug;75(15):6962-8 PMID: 11435576
  5. Reconstitution of a functional duck hepatitis B virus replication initiation complex from separate reverse transcriptase domains expressed in Escherichia coli.
    J Virol. 2001 Aug;75(16):7410-9 PMID: 11462013
  6. In vitro reconstitution of functional hepadnavirus reverse transcriptase with cellular chaperone proteins.
    J Virol. 2002 Jan;76(1):269-79 PMID: 11739692
  7. HSP40 binding is the first step in the HSP90 chaperoning pathway for the progesterone receptor.
    J Biol Chem. 2002 Apr 5;277(14):11873-81 PMID: 11809754
  8. Hsp90 inhibitors as novel cancer chemotherapeutic agents.
    Trends Mol Med. 2002;8(4 Suppl):S55-61 PMID: 11927289
  9. Distinct requirement for two stages of protein-primed initiation of reverse transcription in hepadnaviruses.
    J Virol. 2002 Jun;76(12):5857-65 PMID: 12021318
  10. Role of p50/CDC37 in hepadnavirus assembly and replication.
    J Biol Chem. 2002 Jul 5;277(27):24361-7 PMID: 11986322
  11. Duck hepatitis B virus virion secretion requires a double-stranded DNA genome.
    J Virol. 2003 Feb;77(3):2287-94 PMID: 12525667
  12. Heat shock protein 90-independent activation of truncated hepadnavirus reverse transcriptase.
    J Virol. 2003 Apr;77(8):4471-80 PMID: 12663754
  13. Activation and inhibition of cellular calcium and tyrosine kinase signaling pathways identify targets of the HBx protein involved in hepatitis B virus replication.
    J Virol. 2003 Jul;77(14):7713-9 PMID: 12829810
  14. Efficient Hsp90-independent in vitro activation by Hsc70 and Hsp40 of duck hepatitis B virus reverse transcriptase, an assumed Hsp90 client protein.
    J Biol Chem. 2003 Sep 19;278(38):36128-38 PMID: 12851401
  15. A duck hepatitis B virus strain with a knockout mutation in the putative X ORF shows similar infectivity and in vivo growth characteristics to wild-type virus.
    Virology. 2003 Dec 20;317(2):291-8 PMID: 14698667
  16. Hepatocellular carcinoma and hepatitis B virus. A prospective study of 22 707 men in Taiwan.
    Lancet. 1981 Nov 21;2(8256):1129-33 PMID: 6118576
  17. Replication of the genome of a hepatitis B--like virus by reverse transcription of an RNA intermediate.
    Cell. 1982 Jun;29(2):403-15 PMID: 6180831
  18. Sequence homology between retroviral reverse transcriptase and putative polymerases of hepatitis B virus and cauliflower mosaic virus.
    Nature. 1983 Oct 27-Nov 2;305(5937):827-9 PMID: 6195530
  19. Duck hepatitis B virus (DHBV) particles produced by transient expression of DHBV DNA in a human hepatoma cell line are infectious in vitro.
    J Virol. 1988 Sep;62(9):3513-6 PMID: 2841501
  20. The amino-terminal domain of the hepadnaviral P-gene encodes the terminal protein (genome-linked protein) believed to prime reverse transcription.
    EMBO J. 1988 Dec 20;7(13):4185-92 PMID: 2854056
  21. Mutational analysis of the hepatitis B virus P gene product: domain structure and RNase H activity.
    J Virol. 1990 Feb;64(2):613-20 PMID: 2153228
  22. Polymerase gene products of hepatitis B viruses are required for genomic RNA packaging as wel as for reverse transcription.
    Nature. 1990 Apr 5;344(6266):552-5 PMID: 1690862
  23. A short cis-acting sequence is required for hepatitis B virus pregenome encapsidation and sufficient for packaging of foreign RNA.
    EMBO J. 1990 Oct;9(10):3389-96 PMID: 2209549
  24. The P gene product of hepatitis B virus is required as a structural component for genomic RNA encapsidation.
    J Virol. 1990 Nov;64(11):5324-32 PMID: 2214019
  25. Effects of insertional and point mutations on the functions of the duck hepatitis B virus polymerase.
    J Virol. 1990 Nov;64(11):5553-8 PMID: 1698997
  26. Hepadnaviral assembly is initiated by polymerase binding to the encapsidation signal in the viral RNA genome.
    EMBO J. 1992 Sep;11(9):3413-20 PMID: 1380455
  27. Hepatitis B viruses and hepatocellular carcinoma.
    Adv Cancer Res. 1992;59:167-226 PMID: 1325733
  28. New vectors for high level expression of recombinant proteins in bacteria.
    Anal Biochem. 1992 May 1;202(2):293-8 PMID: 1519755
  29. The reverse transcriptase of hepatitis B virus acts as a protein primer for viral DNA synthesis.
    Cell. 1992 Nov 13;71(4):663-70 PMID: 1384989
  30. An RNA stem-loop structure directs hepatitis B virus genomic RNA encapsidation.
    J Virol. 1993 Jun;67(6):3254-63 PMID: 7684464
  31. Novel mechanism for reverse transcription in hepatitis B viruses.
    J Virol. 1993 Nov;67(11):6507-12 PMID: 7692081
  32. Reverse transcription in hepatitis B viruses is primed by a tyrosine residue of the polymerase.
    J Virol. 1994 Jan;68(1):6-13 PMID: 7504742
  33. Characterization of a novel 23-kilodalton protein of unactive progesterone receptor complexes.
    Mol Cell Biol. 1994 Mar;14(3):1956-63 PMID: 8114727
  34. ATP-dependent chaperoning activity of reticulocyte lysate.
    J Biol Chem. 1994 Apr 1;269(13):9493-9 PMID: 8144534
  35. Hepadnavirus P protein utilizes a tyrosine residue in the TP domain to prime reverse transcription.
    J Virol. 1994 May;68(5):2994-9 PMID: 7512155
  36. Hepadnavirus reverse transcription initiates within the stem-loop of the RNA packaging signal and employs a novel strand transfer.
    J Virol. 1994 Jun;68(6):3536-43 PMID: 8189492
  37. Multiple functions of capsid protein phosphorylation in duck hepatitis B virus replication.
    J Virol. 1994 Jul;68(7):4341-8 PMID: 8207809
  38. Site-specific RNA binding by a hepatitis B virus reverse transcriptase initiates two distinct reactions: RNA packaging and DNA synthesis.
    J Virol. 1994 Sep;68(9):5579-87 PMID: 7520092
  39. Role of RNA in enzymatic activity of the reverse transcriptase of hepatitis B viruses.
    J Virol. 1994 Dec;68(12):8437-42 PMID: 7525990
  40. Mutations in the epsilon sequences of human hepatitis B virus affect both RNA encapsidation and reverse transcription.
    J Virol. 1995 May;69(5):3067-73 PMID: 7707534
  41. Nucleotide priming and reverse transcriptase activity of hepatitis B virus polymerase expressed in insect cells.
    J Virol. 1995 Jul;69(7):4431-9 PMID: 7539509
  42. Specific hepatitis B virus minus-strand DNA synthesis requires only the 5' encapsidation signal and the 3'-proximal direct repeat DR1.
    J Virol. 1996 Jan;70(1):585-9 PMID: 8523575
  43. Hsp90 is required for the activity of a hepatitis B virus reverse transcriptase.
    Proc Natl Acad Sci U S A. 1996 Feb 6;93(3):1060-4 PMID: 8577714
  44. A bulged region of the hepatitis B virus RNA encapsidation signal contains the replication origin for discontinuous first-strand DNA synthesis.
    J Virol. 1996 May;70(5):2764-73 PMID: 8627750
  45. Evidence for activation of the hepatitis B virus polymerase by binding of its RNA template.
    J Virol. 1996 Sep;70(9):5741-50 PMID: 8709189
  46. Mutagenesis of a hepatitis B virus reverse transcriptase yields temperature-sensitive virus.
    Virology. 1996 Aug 15;222(2):430-9 PMID: 8806527
  47. Cooperative action of Hsp70, Hsp90, and DnaJ proteins in protein renaturation.
    Biochemistry. 1996 Nov 26;35(47):14889-98 PMID: 8942653
  48. Hepadnavirus assembly and reverse transcription require a multi-component chaperone complex which is incorporated into nucleocapsids.
    EMBO J. 1997 Jan 2;16(1):59-68 PMID: 9009268
  49. Expression and characterization of hepadnavirus reverse transcriptases.
    Methods Enzymol. 1996;275:195-208 PMID: 9026639
  50. Transcomplementation of nucleotide priming and reverse transcription between independently expressed TP and RT domains of the hepatitis B virus reverse transcriptase.
    J Virol. 1997 Apr;71(4):2996-3004 PMID: 9060659
  51. Nucleotides and two functional states of hsp90.
    J Biol Chem. 1997 Mar 21;272(12):8007-12 PMID: 9065472
  52. Sequence- and structure-specific determinants in the interaction between the RNA encapsidation signal and reverse transcriptase of avian hepatitis B viruses.
    J Virol. 1997 Jul;71(7):4971-80 PMID: 9188560
  53. Inducible expression of human hepatitis B virus (HBV) in stably transfected hepatoblastoma cells: a novel system for screening potential inhibitors of HBV replication.
    Antimicrob Agents Chemother. 1997 Aug;41(8):1715-20 PMID: 9257747
  54. The amino-terminal domain of heat shock protein 90 (hsp90) that binds geldanamycin is an ATP/ADP switch domain that regulates hsp90 conformation.
    J Biol Chem. 1997 Sep 19;272(38):23843-50 PMID: 9295332
  55. Hepatitis B virus infection.
    N Engl J Med. 1997 Dec 11;337(24):1733-45 PMID: 9392700
  56. The Hsp70 and Hsp60 chaperone machines.
    Cell. 1998 Feb 6;92(3):351-66 PMID: 9476895
  57. Structure, function and evolution of DnaJ: conservation and adaptation of chaperone function.
    Cell Stress Chaperones. 1998 Mar;3(1):28-36 PMID: 9585179
  58. In vitro activity of hepatitis B virus polymerase: requirement for distinct metal ions and the viral epsilon stem-loop.
    J Gen Virol. 1998 May;79 ( Pt 5):1121-31 PMID: 9603327
  59. The duck hepatitis B virus polymerase is activated by its RNA packaging signal, epsilon.
    J Virol. 1998 Jul;72(7):5789-96 PMID: 9621038
  60. The J-domain family and the recruitment of chaperone power.
    Trends Biochem Sci. 1998 Jun;23(6):222-7 PMID: 9644977
  61. The Hsp90 complex--a super-chaperone machine as a novel drug target.
    Biochem Pharmacol. 1998 Sep 15;56(6):675-82 PMID: 9751071
  62. Formation of a functional hepatitis B virus replication initiation complex involves a major structural alteration in the RNA template.
    Mol Cell Biol. 1998 Nov;18(11):6265-72 PMID: 9774643
  63. Hepatitis B virus biology.
    Microbiol Mol Biol Rev. 2000 Mar;64(1):51-68 PMID: 10704474
Article Info
Journal
Journal of virology
Abbr.
J Virol
ISSN
0022-538X
Published
2004-12-00
Pages
13122-31
Language
English
Region
United States
NLM ID
0113724
PMCID
PMC525004
Subset
IM
Grants
NIAID NIH HHS · R01 AI043453 · United States
NIAID NIH HHS · R01 AI43453 · United States
Analysis Services
Analysis Services

Contact

No. 2 Wenbo Road, Zhangqiu District, Jinan, Shandong

Qilu Normal University · Genelibs Bioinformatics Lab

750 Shunhua Rd, Jinan

2F, Bldg F, University Science Park

Tel: 0531-88819269

WeChat Official Account

Follow our WeChat subscription account for real-time updates and the latest in medical and biological research.


Business Email

E-mail: product@genelibs.com