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Effects of Drugs Formerly Suggested for COVID-19 Repurposing on Pannexin1 Channels
Anne Caufriez1,2, Andrés Tabernilla1, Raf Van Campenhout1
1Department of Pharmaceutical and Pharmacological Sciences, Vrije Universiteit Brussel, Laarbeeklaan 103, 1090 Brussels, Belgium.
Abstract:
Although many efforts have been made to elucidate the pathogenesis of COVID-19, the underlying mechanisms are yet to be fully uncovered. However, it is known that a dysfunctional immune response and the accompanying uncontrollable inflammation lead to troublesome outcomes in COVID-19 patients. Pannexin1 channels are put forward as interesting drug targets for the treatment of COVID-19 due to their key role in inflammation and their link to other viral infections. In the present study, we selected a panel of drugs previously tested in clinical trials as potential candidates for the treatment of COVID-19 early on in the pandemic, including hydroxychloroquine, chloroquine, azithromycin, dexamethasone, ribavirin, remdesivir, favipiravir, lopinavir, and ritonavir. The effect of the drugs on pannexin1 channels was assessed at a functional level by means of measurement of extracellular ATP release. Immunoblot analysis and real-time quantitative reversetranscription polymerase chain reaction analysis were used to study the potential of the drugs to alter pannexin1 protein and mRNA expression levels, respectively. Favipiravir, hydroxychloroquine, lopinavir, and the combination of lopinavir with ritonavir were found to inhibit pannexin1 channel activity without affecting pannexin1 protein or mRNA levels. Thusthree new inhibitors of pannexin1 channels were identified that, though currently not being used anymore for the treatment of COVID-19 patients, could be potential drug candidates for other pannexin1-related diseases.
Insights
Three drugs, favipiravir, hydroxychloroquine, and lopinavir (with ritonavir), inhibit pannexin1 channels, a key inflammation target in COVID-19. These drugs may offer new therapeutic options for pannexin1-related diseases.
Area of Science:
- Immunology
- Pharmacology
- Virology
Background:
- COVID-19 pathogenesis involves a dysfunctional immune response and uncontrolled inflammation.
- Pannexin1 channels play a critical role in inflammation and are implicated in viral infections, making them potential therapeutic targets.
Purpose of the Study:
- To evaluate the effects of existing COVID-19 clinical trial drugs on pannexin1 channel activity.
- To identify novel inhibitors of pannexin1 channels for potential therapeutic applications.
Main Methods:
- Functional assessment of pannexin1 channel activity via extracellular ATP release measurement.
- Immunoblot analysis to determine effects on pannexin1 protein expression.
- Real-time quantitative reverse-transcription polymerase chain reaction (RT-qPCR) to assess pannexin1 mRNA levels.
Main Results:
- Favipiravir, hydroxychloroquine, lopinavir, and lopinavir/ritonavir combination inhibited pannexin1 channel activity.
- These drugs did not significantly alter pannexin1 protein or mRNA expression levels.
- Identification of three novel pannexin1 channel inhibitors.
Conclusions:
- Favipiravir, hydroxychloroquine, and lopinavir/ritonavir are effective inhibitors of pannexin1 channel activity.
- These compounds represent potential drug candidates for treating pannexin1-related inflammatory diseases beyond COVID-19.
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