Literature DB >> 21489987

Active participation of cellular chaperone Hsp90 in regulating the function of rotavirus nonstructural protein 3 (NSP3).

Dipanjan Dutta1, Shiladitya Chattopadhyay, Parikshit Bagchi, Umesh Chandra Halder, Satabdi Nandi, Anupam Mukherjee, Nobumichi Kobayashi, Koki Taniguchi, Mamta Chawla-Sarkar.   

Abstract

Heat shock protein 90 (Hsp90) has been reported to positively regulate rotavirus replication by modulating virus induced PI3K/Akt and NFκB activation. Here, we report the active association of Hsp90 in the folding and stabilization of rotavirus nonstructural protein 3 (NSP3). In pCD-NSP3-transfected cells, treatment with Hsp90 inhibitor (17-N,N-dimethylethylenediamine-geldanamycin (17DMAG)) resulted in the proteasomal degradation of NSP3. Sequence analysis and deletion mutations revealed that the region spanning amino acids 225-258 within the C-terminal eIF4G-binding domain of NSP3 is a putative Hsp90 binding region. Co-immunoprecipitation and mammalian two-hybrid experiments revealed direct interaction of the C-terminal 12-kDa domain of Hsp90 (C90) with residues 225-258 of NSP3. NSP3-Hsp90 interaction is important for the formation of functionally active mature NSP3, because full-length NSP3 in the presence of the Hsp90 inhibitor or NSP3 lacking the amino acid 225-258 region did not show NSP3 dimers following in vitro coupled transcription-translation followed by chase. Disruption of residues 225-258 within NSP3 also resulted in poor RNA binding and eIF4G binding activity. In addition, inhibition of Hsp90 by 17DMAG resulted in reduced nuclear translocation of poly(A)-binding protein and translation of viral proteins. These results highlight the crucial role of Hsp90 chaperone in the regulation of assembly and functionality of a viral protein during the virus replication and propagation in host cells.

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Year:  2011        PMID: 21489987      PMCID: PMC3103379          DOI: 10.1074/jbc.M111.231878

Source DB:  PubMed          Journal:  J Biol Chem        ISSN: 0021-9258            Impact factor:   5.157


  57 in total

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Review 6.  Heat-shock protein 90, a chaperone for folding and regulation.

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Authors:  M Piron; T Delaunay; J Grosclaude; D Poncet
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9.  Specific binding of tetratricopeptide repeat proteins to the C-terminal 12-kDa domain of hsp90.

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Journal:  J Biol Chem       Date:  1998-07-17       Impact factor: 5.157

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  12 in total

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Journal:  PLoS One       Date:  2013-02-20       Impact factor: 3.240

5.  Heat shock protein 90 positively regulates Chikungunya virus replication by stabilizing viral non-structural protein nsP2 during infection.

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6.  Species A rotavirus NSP3 acquires its translation inhibitory function prior to stable dimer formation.

Authors:  Hugo I Contreras-Treviño; Edgar Reyna-Rosas; Renato León-Rodríguez; Blanca H Ruiz-Ordaz; Tzvetanka D Dinkova; Ana M Cevallos; Luis Padilla-Noriega
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7.  Induction of Cell Death in the Human Acute Lymphoblastic Leukemia Cell Line Reh by Infection with Rotavirus Isolate Wt1-5.

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8.  Biphasic regulation of RNA interference during rotavirus infection by modulation of Argonaute2.

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