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Updated: Oct 9, 2025

Early Viral Entry Assays for the Identification and Evaluation of Antiviral Compounds
Published on: October 29, 2015
Drug Combinations as a First Line of Defense against Coronaviruses and Other Emerging Viruses
Judith M White1,2, Joshua T Schiffer3,4, Rachel A Bender Ignacio3,4
1University of Virginiagrid.27755.32, Department of Cell Biology, Charlottesville, Virginia, USA.
Abstract:
The world was unprepared for coronavirus disease 2019 (COVID-19) and remains ill-equipped for future pandemics. While unprecedented strides have been made developing vaccines and treatments for COVID-19, there remains a need for highly effective and widely available regimens for ambulatory use for novel coronaviruses and other viral pathogens. We posit that a priority is to develop pan-family drug cocktails to enhance potency, limit toxicity, and avoid drug resistance. We urge cocktail development for all viruses with pandemic potential both in the short term (<1 to 2 years) and longer term with pairs of drugs in advanced clinical testing or repurposed agents approved for other indications. While significant efforts were launched against severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2), in vitro and in the clinic, many studies employed solo drugs and had disappointing results. Here, we review drug combination studies against SARS-CoV-2 and other viruses and introduce a model-driven approach to assess drug pairs with the highest likelihood of clinical efficacy. Where component agents lack sufficient potency, we advocate for synergistic combinations to achieve therapeutic levels. We also discuss issues that stymied therapeutic progress against COVID-19, including testing of agents with low likelihood of efficacy late in clinical disease and lack of focus on developing virologic surrogate endpoints. There is a need to expedite efficient clinical trials testing drug combinations that could be taken at home by recently infected individuals and exposed contacts as early as possible during the next pandemic, whether caused by a coronavirus or another viral pathogen. The approach herein represents a proactive plan for global viral pandemic preparedness.
Insights
Developing drug cocktails is crucial for future pandemic preparedness. Combining antiviral drugs can enhance effectiveness, reduce toxicity, and prevent resistance for novel coronaviruses and other viral threats.
Area of Science:
- Virology
- Infectious Diseases
- Drug Development
Background:
- The world was unprepared for coronavirus disease 2019 (COVID-19) and remains ill-equipped for future pandemics.
- While vaccines and treatments for COVID-19 were developed, there's a need for accessible ambulatory regimens for novel coronaviruses and other viral pathogens.
Purpose of the Study:
- To advocate for the development of pan-family drug cocktails to enhance potency, limit toxicity, and avoid drug resistance for pandemic preparedness.
- To review drug combination studies against SARS-CoV-2 and other viruses and introduce a model-driven approach to assess promising drug pairs.
Main Methods:
- Review of existing drug combination studies against SARS-CoV-2 and other viruses.
- Introduction of a model-driven approach to evaluate drug pairs for clinical efficacy.
- Discussion of challenges in therapeutic progress against COVID-19 and the need for expedited clinical trials.
Main Results:
- Many studies on severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2) used solo drugs with disappointing results.
- A model-driven approach can identify drug pairs with the highest likelihood of clinical efficacy.
- Synergistic combinations are advocated where component agents lack sufficient potency.
Conclusions:
- A proactive plan for global viral pandemic preparedness requires developing drug cocktails for viruses with pandemic potential.
- Expediting efficient clinical trials for drug combinations that can be taken at home by early-stage infected individuals and exposed contacts is essential.
- This approach aims to improve preparedness for future pandemics, whether caused by coronaviruses or other viral pathogens.
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