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1.
PLoS Pathog ; 17(7): e1009746, 2021 07.
Article in English | MEDLINE | ID: mdl-34297778

ABSTRACT

HCV cell-culture system uses hepatoma-derived cell lines for efficient virus propagation. Tumor cells cultured in glucose undergo active aerobic glycolysis, but switch to oxidative phosphorylation for energy production when cultured in galactose. Here, we investigated whether modulation of glycolysis in hepatocytes affects HCV infection. We showed HCV release, but not entry, genome replication or virion assembly, is significantly blocked when cells are cultured in galactose, leading to accumulation of intracellular infectious virions within multivesicular body (MVB). Blockade of the MVB-lysosome fusion or treatment with pro-inflammatory cytokines promotes HCV release in galactose. Furthermore, we found this glycometabolic regulation of HCV release is mediated by MAPK-p38 phosphorylation. Finally, we showed HCV cell-to-cell transmission is not affected by glycometabolism, suggesting that HCV cell-to-supernatant release and cell-to-cell transmission are two mechanistically distinct pathways. In summary, we demonstrated glycometabolism regulates the efficiency and route of HCV release. We proposed HCV may exploit the metabolic state in hepatocytes to favor its spread through the cell-to-cell transmission in vivo to evade immune response.


Subject(s)
Hepacivirus/physiology , Hepatitis C/virology , Hepatocytes/metabolism , Hepatocytes/virology , Virus Release/physiology , Cell Line, Tumor , Humans
2.
Emerg Microbes Infect ; 13(1): 2356149, 2024 Dec.
Article in English | MEDLINE | ID: mdl-38747061

ABSTRACT

Lassa virus (LASV), a risk-group 4 pathogen, must be handled in biosafety level-4 (BSL-4) conditions, thereby limiting its research and antiviral development. Here, we developed a novel LASV reverse genetics system which, to our knowledge, is the first to study the complete LASV life cycle under BSL-2 conditions. Viral particles can be produced efficiently when LASV minigenomic RNA harbouring minimal viral cis-elements and reporter genes is transfected into a helper cell line stably expressing viral NP, GP, Z and L proteins. The resulting defective virions, named LASVmg, can propagate only in the helper cell line, providing a BSL-2 model to study the complete LASV life cycle. Using this model, we found that a previously reported cellular receptor α-dystroglycan is dispensable for LASVmg infection. Furthermore, we showed that ribavirin can inhibit LASVmg infection by inducing viral mutations. This new BSL-2 system should facilitate studying the LASV life cycle and screening antivirals.


Subject(s)
Lassa virus , Reverse Genetics , Lassa virus/genetics , Lassa virus/physiology , Reverse Genetics/methods , Humans , Animals , Antiviral Agents/pharmacology , Chlorocebus aethiops , Cell Line , Virus Replication , Lassa Fever/virology , Ribavirin/pharmacology , Vero Cells , Containment of Biohazards , Genome, Viral , Virion/genetics , Virion/metabolism
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