scholarly journals Replication and in vivo repair of the hepatitis A virus genome lacking the poly(A) tail

2005 ◽  
Vol 86 (5) ◽  
pp. 1363-1368 ◽  
Author(s):  
Yuri Y. Kusov ◽  
Rainer Gosert ◽  
Verena Gauss-Müller

The precise role of the poly(A) tail at the 3′ end of the picornavirus RNA genome and the cellular factors that control its homeostasis are unknown. To assess the importance of the poly(A) tail for virus replication, the genome of the slowly replicating hepatitis A virus (HAV) with and without a poly(A) tail was studied after transfection into cells maintained under various conditions. A tailless HAV genome had a shorter half-life than a poly(A)-containing genome and was unable to replicate in quiescent cells. In dividing cells, the tailless RNA gave rise to infectious virus with a restored poly(A) tail of up to 60 residues. Cells arrested at the G0 and the G2/M phase produced lower amounts of infectious HAV than cells in the G1 phase. These data suggest that the 3′ poly(A) tail of HAV can be restored with the help of a cellular and/or viral function that is regulated during the cell cycle.

2020 ◽  
Vol 64 (2) ◽  
pp. 251-261
Author(s):  
Jessica E. Fellmeth ◽  
Kim S. McKim

Abstract While many of the proteins involved in the mitotic centromere and kinetochore are conserved in meiosis, they often gain a novel function due to the unique needs of homolog segregation during meiosis I (MI). CENP-C is a critical component of the centromere for kinetochore assembly in mitosis. Recent work, however, has highlighted the unique features of meiotic CENP-C. Centromere establishment and stability require CENP-C loading at the centromere for CENP-A function. Pre-meiotic loading of proteins necessary for homolog recombination as well as cohesion also rely on CENP-C, as do the main scaffolding components of the kinetochore. Much of this work relies on new technologies that enable in vivo analysis of meiosis like never before. Here, we strive to highlight the unique role of this highly conserved centromere protein that loads on to centromeres prior to M-phase onset, but continues to perform critical functions through chromosome segregation. CENP-C is not merely a structural link between the centromere and the kinetochore, but also a functional one joining the processes of early prophase homolog synapsis to late metaphase kinetochore assembly and signaling.


1990 ◽  
Vol 161 (1) ◽  
pp. 7-13 ◽  
Author(s):  
S. M. Lemon ◽  
L. N. Binn ◽  
R. Marchwicki ◽  
P. C. Murphy ◽  
L.-H. Ping ◽  
...  

2021 ◽  
Vol 12 ◽  
Author(s):  
Yuanzhi Liu ◽  
Anchun Cheng ◽  
Mingshu Wang ◽  
Sai Mao ◽  
Xumin Ou ◽  
...  

Duck hepatitis A virus type 1 (DHAV-1) is one of the most deadly pathogens that endanger the duck industry. Most viruses usually turn off host translation after infection to facilitate viral replication and translation. For the first time report to our knowledge, DHAV-1 can induce eIF2α phosphorylation and inhibit cellular translation in duck embryo fibroblasts (DEFs). Moreover, the activity of DHAV-1 in the cells caused obvious eIF2α phosphorylation, which has nothing to do with the viral protein. Subsequently, we screened two kinases (PERK and GCN2) that affect eIF2α phosphorylation through inhibitors and shRNA. Notably, the role of GCN2 in other picornaviruses has not been reported. In addition, when the phosphorylation of eIF2α induced by DHAV-1 is inhibited, the translation efficiency of DEFs restores to a normal level, indicating that DHAV-1 induced cellular translation shutoff is dependent on eIF2α phosphorylation.


2021 ◽  
Author(s):  
Ichiro Misumi ◽  
Zhucui Li ◽  
Lu Sun ◽  
Anshuman Das ◽  
Tomoyuki Shiota ◽  
...  

Iminosugar compounds are monosaccharide mimetics with broad but generally weak antiviral activities related to inhibition of enzymes involved in glycobiology. Miglustat (N-butyl-1-deoxynojirimycin), which is approved for treatment of lipid storage diseases in humans, and UV-4 (N-(9-methoxynonyl)-1-deoxynojirimycin), inhibit replication of hepatitis A virus (HAV) in cell culture (IC50 32.13 μM and 8.05 μM, respectively) by blocking the synthesis of gangliosides essential for HAV cell entry. We used a murine model of hepatitis A and targeted mass spectrometry to assess the capacity of these compounds to deplete hepatic gangliosides and modify the course of HAV infection in vivo. Miglustat, given by gavage to Ifnar1-/- mice (4800 mg/kg/day) depleted hepatic gangliosides by 69-75%, but caused substantial gastrointestinal toxicity and failed to prevent viral infection. UV-4, similarly administered in high doses (400 mg/kg/day), was well tolerated, but depleted hepatic gangliosides by only 20% after 14 days. UV-4 depletion of gangliosides varied by class. Several GM2 species were paradoxically increased, likely due to inhibition of β-glucosidases that degrade gangliosides. Both compounds enhanced, rather than reduced, virus replication. Nonetheless, both iminosugars had surprising anti-inflammatory effects, blocking the accumulation of inflammatory cells within the liver. UV-4 treatment also resulted in a decrease in serum alanine aminotransferase (ALT) elevations associated with acute hepatitis A. These anti-inflammatory effects may result from iminosugar inhibition of cellular α-glucosidases, leading to impaired maturation of glycan moieties of chemokine and cytokine receptors, and point to the potential importance of paracrine signaling in the pathogenesis of acute hepatitis A. IMPORTANCE Hepatitis A virus (HAV) is a common cause of viral hepatitis. Iminosugar compounds block its replication in cultured cells by inhibiting synthesis of gangliosides required for HAV cell entry, but have not been tested for their ability to prevent or treat hepatitis A in vivo. We show that high doses of the iminosugars miglustat and UV-4 fail to deplete gangliosides sufficiently to block HAV infection in mice lacking a key interferon receptor. These compounds nonetheless have striking anti-inflammatory effects on the HAV-infected liver, reducing the severity of hepatitis despite enhancing chemokine and cytokine expression resulting from hepatocyte-intrinsic antiviral responses. We propose that iminosugar inhibition of cellular α-glucosidases impairs maturation of glycan moieties of chemokine and cytokine receptors required for effective signaling. These data highlight the potential importance of paracrine signaling pathways in the inflammatory response to HAV, and add to our understanding of HAV pathogenesis in mice.


PEDIATRICS ◽  
1980 ◽  
Vol 66 (2) ◽  
pp. 269-271
Author(s):  
William F. Balistreri ◽  
Edward Tabor ◽  
Robert J. Gerety

Serologic evidence of hepatitis A virus (HAV) or hepatitis B virus (HBV) infection was sought in 14 patients with biliary atresia and in four patients with neonatal hepatitis; maternal serum was also analyzed. Specific sensitive radioimmunoassays were used to detect HBV surface antigen (HBsAg) and antibody (anti-HBs); complement fixation was used to detect antibody to HBV core antigen (anti-HBc). Antibody to HAV (anti-HAV) was assayed by radioimmunoassay, as well as by immune adherence hemagglutination. There was no evidence of active or past HBV infection in any infant or mother studied. All three infants with detectable anti-HAV were born to mothers similarly anti-HAV positive; serial testing of sera from two of these infants documented disappearance of detectable anti-HAV by 9 months of age. It is unlikely, therefore, that either HAV or HBV had an etiologic role in neonatal cholestasis in these patients. The role of other (non-A, non-B) hepatitis viruses or nonviral etiologies must be investigated.


2019 ◽  
Vol 11 (9) ◽  
pp. 2439-2456 ◽  
Author(s):  
Lucía D’Andrea ◽  
Francisco-Javier Pérez-Rodríguez ◽  
Montserrat de Castellarnau ◽  
Susana Guix ◽  
Enric Ribes ◽  
...  

AbstractHepatoviruses show an intriguing deviated codon usage, suggesting an evolutionary signature. Abundant and rare codons in the cellular genome are scarce in the human hepatitis A virus (HAV) genome, while intermediately abundant host codons are abundant in the virus. Genotype–phenotype maps, or fitness landscapes, are a means of representing a genotype position in sequence space and uncovering how genotype relates to phenotype and fitness. Using genotype–phenotype maps of the translation efficiency, we have shown the critical role of the HAV capsid codon composition in regulating translation and determining its robustness. Adaptation to an environmental perturbation such as the artificial induction of cellular shutoff—not naturally occurring in HAV infection—involved movements in the sequence space and dramatic changes of the translation efficiency. Capsid rare codons, including abundant and rare codons of the cellular genome, slowed down the translation efficiency in conditions of no cellular shutoff. In contrast, rare capsid codons that are abundant in the cellular genome were efficiently translated in conditions of shutoff. Capsid regions very rich in slowly translated codons adapt to shutoff through sequence space movements from positions with highly robust translation to others with diminished translation robustness. These movements paralleled decreases of the capsid physical and biological robustness, and resulted in the diversification of capsid phenotypes. The deviated codon usage of extant hepatoviruses compared with that of their hosts may suggest the occurrence of a virus ancestor with an optimized codon usage with respect to an unknown ancient host.


2010 ◽  
Vol 84 (16) ◽  
pp. 8342-8347 ◽  
Author(s):  
Krishnamurthy Konduru ◽  
Gerardo G. Kaplan

ABSTRACT Hepatitis A virus (HAV), an atypical member of the Picornaviridae, grows poorly in cell culture. To define determinants of HAV growth, we introduced a blasticidin (Bsd) resistance gene into the virus genome and selected variants that grew at high concentrations of Bsd. The mutants grew fast and had increased rates of RNA replication and translation but did not produce significantly higher virus yields. Nucleotide sequence analysis and reverse genetic studies revealed that a T6069G change resulting in a F42L amino acid substitution in the viral polymerase (3Dpol) was required for growth at high Bsd concentrations whereas a silent C7027T mutation enhanced the growth rate. Here, we identified a novel determinant(s) in 3Dpol that controls the kinetics of HAV growth.


1984 ◽  
Vol 14 (4) ◽  
pp. 373-386 ◽  
Author(s):  
Daniel W. Bradley ◽  
Charles A. Schable ◽  
Karen A. McCaustland ◽  
E. H. Cook ◽  
Bert L. Murphy ◽  
...  

Sign in / Sign up

Export Citation Format

Share Document