The viral core protein is associated with the hepatitis B virus minichromosome

2000 ◽  
Vol 32 ◽  
pp. 90
Author(s):  
C.-T. Bock ◽  
S. Schwinn ◽  
B. Buerke ◽  
S. Locarnini ◽  
M.P. Manns ◽  
...  
Virology ◽  
1986 ◽  
Vol 155 (1) ◽  
pp. 89-96 ◽  
Author(s):  
Angela Uy ◽  
Volker Bruss ◽  
Wolfram H. Gerlich ◽  
Heinrich G. Köchel ◽  
Reiner Thomssen

2000 ◽  
Vol 74 (18) ◽  
pp. 8648-8657 ◽  
Author(s):  
Ermei Yao ◽  
Yunhao Gong ◽  
Nanhai Chen ◽  
John E. Tavis

ABSTRACT The hepadnavirus reverse transcriptase binds cotranslationally to the viral pregenomic RNA. This ribonucleoprotein complex is then encapsidated into nascent viral core particles, where the reverse transcriptase copies the viral RNA into DNA. Here we report that 75% of the duck hepatitis B virus reverse transcriptase present in transfected LMH cells does not follow this well-known pathway but rather exists in the cell separate from the core protein or nucleocapsids. The nonencapsidated reverse transcriptase is also abundant in infected duck liver. The nonencapsidated reverse transcriptase exists as a complex set of isoforms that are most likely produced by posttranslational modification. Interestingly, only the smallest of these isoforms is encapsidated into viral core particles. The nonencapsidated reverse transcriptase is bound to a large cellular cytoplasmic structure(s) in a detergent-sensitive complex. The cellular distribution of the reverse transcriptase only partially overlaps that of the core protein, and this distribution is unaffected by blocking encapsidation. These observations raise the possibilities that the metabolic fate of the reverse transcriptase may be posttranscriptionally regulated and that the reverse transcriptase may have roles in the viral replication cycle beyond its well-known function in copying the viral genome.


2006 ◽  
Vol 87 (7) ◽  
pp. 1883-1891 ◽  
Author(s):  
Sook-Young Sohn ◽  
Sun-Bum Kim ◽  
Joon Kim ◽  
Byung-Yoon Ahn

The hepatitis B virus core protein consists of an amino-terminal capsid-assembly domain and a carboxyl-terminal RNA-binding domain. By using the yeast two-hybrid system, two Hsp40/DnaJ chaperone-family proteins, Hdj1 and hTid1, that interact with the carboxyl-terminal region (aa 94–185) of the core protein were identified. Hdj1 is the prototype member of the family and hTid1 is the human homologue of the Drosophila tumour-suppressor protein Tid56. Binding of the viral core protein with the Hsp40 proteins was confirmed by affinity chromatography and immunoprecipitation of transiently expressed proteins. Moreover, in a sucrose gradient, the precursor form of hTid1 co-sedimented with capsid-like particles composed of the full-length core protein. Unlike the general perception of the role of the cellular chaperone proteins in assisting viral protein folding and thus enhancing virus replication, ectopic expression of Hdj1 and hTid1 suppressed replication of HBV in transfected human hepatoma cells. Conversely, RNA interference-mediated knock-down of hTid1 resulted in increased HBV replication. It was found that both Hsp40 proteins specifically accelerated degradation of the viral core and HBx proteins. Our results suggest that the cellular chaperones, through destabilization of viral proteins, exert inhibitory functions on virus replication and hence may play suppressive roles in hepatocellular carcinoma.


2018 ◽  
Vol 7 (1) ◽  
pp. 1-14 ◽  
Author(s):  
Yongxuan Yao ◽  
Bo Yang ◽  
Huang Cao ◽  
Kaitao Zhao ◽  
Yifei Yuan ◽  
...  

2009 ◽  
Vol 3 (4) ◽  
pp. 396-402 ◽  
Author(s):  
Yuanyuan Lin ◽  
Xiaoming Cheng ◽  
Yuhu Song ◽  
Li Zhou ◽  
Peiyuan Li ◽  
...  

2021 ◽  
Vol 118 (17) ◽  
pp. e2022464118
Author(s):  
Lauriane Lecoq ◽  
Shishan Wang ◽  
Marie Dujardin ◽  
Peter Zimmermann ◽  
Leonard Schuster ◽  
...  

Viral hepatitis is growing into an epidemic illness, and it is urgent to neutralize the main culprit, hepatitis B virus (HBV), a small-enveloped retrotranscribing DNA virus. An intriguing observation in HB virion morphogenesis is that capsids with immature genomes are rarely enveloped and secreted. This prompted, in 1982, the postulate that a regulated conformation switch in the capsid triggers envelopment. Using solid-state NMR, we identified a stable alternative conformation of the capsid. The structural variations focus on the hydrophobic pocket of the core protein, a hot spot in capsid–envelope interactions. This structural switch is triggered by specific, high-affinity binding of a pocket factor. The conformational change induced by the binding is reminiscent of a maturation signal. This leads us to formulate the “synergistic double interaction” hypothesis, which explains the regulation of capsid envelopment and indicates a concept for therapeutic interference with HBV envelopment.


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