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Published on: January 24, 2016
Vemurafenib Inhibits Acute and Chronic Enterovirus Infection by Affecting Cellular Kinase Phosphatidylinositol
Mira Laajala1, Marleen Zwaagstra2, Mari Martikainen1
1Department of Biological and Environmental Science/Nanoscience Center, University of Jyväskylä, Jyväskylä, Finland.
Abstract:
Enteroviruses are one of the most abundant viruses causing mild to serious acute infections in humans and also contributing to chronic diseases like type 1 diabetes. Presently, there are no approved antiviral drugs against enteroviruses. Here, we studied the potency of vemurafenib, an FDA-approved RAF kinase inhibitor for treating BRAFV600E mutant-related melanoma, as an antiviral against enteroviruses. We showed that vemurafenib prevented enterovirus translation and replication at low micromolar dosage in an RAF/MEK/ERK-independent manner. Vemurafenib was effective against group A, B, and C enteroviruses, as well as rhinovirus, but not parechovirus or more remote viruses such as Semliki Forest virus, adenovirus, and respiratory syncytial virus. The inhibitory effect was related to a cellular phosphatidylinositol 4-kinase type IIIβ (PI4KB), which has been shown to be important in the formation of enteroviral replication organelles. Vemurafenib prevented infection efficiently in acute cell models, eradicated infection in a chronic cell model, and lowered virus amounts in pancreas and heart in an acute mouse model. Altogether, instead of acting through the RAF/MEK/ERK pathway, vemurafenib affects the cellular PI4KB and, hence, enterovirus replication, opening new possibilities to evaluate further the potential of vemurafenib as a repurposed drug in clinical care. IMPORTANCE Despite the prevalence and medical threat of enteroviruses, presently, there are no antivirals against them. Here, we show that vemurafenib, an FDA-approved RAF kinase inhibitor for treating BRAFV600E mutant-related melanoma, prevents enterovirus translation and replication. Vemurafenib shows efficacy against group A, B, and C enteroviruses, as well as rhinovirus, but not parechovirus or more remote viruses such as Semliki Forest virus, adenovirus, and respiratory syncytial virus. The inhibitory effect acts through cellular phosphatidylinositol 4-kinase type IIIβ (PI4KB), which has been shown to be important in the formation of enteroviral replication organelles. Vemurafenib prevents infection efficiently in acute cell models, eradicates infection in a chronic cell model, and lowers virus amounts in pancreas and heart in an acute mouse model. Our findings open new possibilities to develop drugs against enteroviruses and give hope for repurposing vemurafenib as an antiviral drug against enteroviruses.
Insights
Vemurafenib, an FDA-approved melanoma drug, shows antiviral potential against enteroviruses by inhibiting viral replication. This drug targets cellular PI4KB, offering a new avenue for treating enterovirus infections.
Area of Science:
- Virology
- Drug Repurposing
- Molecular Biology
Background:
- Enteroviruses cause significant human infections, with no approved antiviral treatments.
- Existing treatments lack efficacy against a broad range of enterovirus strains.
Purpose of the Study:
- To investigate vemurafenib's antiviral activity against enteroviruses.
- To elucidate the mechanism of action for vemurafenib's antiviral effects.
Main Methods:
- Assessed vemurafenib's effect on enterovirus replication in cell cultures.
- Utilized cell models for acute and chronic infections.
- Evaluated vemurafenib's efficacy in an acute mouse model.
Main Results:
- Vemurafenib inhibited enterovirus translation and replication at low micromolar concentrations.
- The drug demonstrated efficacy against enterovirus groups A, B, C, and rhinovirus.
- Vemurafenib targets cellular phosphatidylinositol 4-kinase type IIIβ (PI4KB), crucial for viral replication.
Conclusions:
- Vemurafenib acts independently of the RAF/MEK/ERK pathway.
- The drug shows potential for repurposing as an antiviral against enteroviruses.
- Vemurafenib effectively reduced viral load in cellular and animal models.
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