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Updated: Jun 22, 2026

High-throughput Screening for Broad-spectrum Chemical Inhibitors of RNA Viruses
Published on: May 5, 2014
Highly Potent Host-Specific Small-Molecule Inhibitor of Paramyxovirus and Pneumovirus Replication with High
Neeta Shrestha1, Flavio Max Gall2, Cyrille Mathieu3
1Division of Neurological Sciences, Vetsuisse Faculty, University of Berngrid.5734.5, Bern, Switzerland.
Abstract:
Multiple enveloped RNA viruses of the family Paramyxoviridae and Pneumoviridae, like measles virus (MeV), Nipah virus (NiV), canine distemper virus (CDV), or respiratory syncytial virus (RSV), are of high clinical relevance. Each year a huge number of lives are lost as a result of these viral infections. Worldwide, MeV infection alone is responsible for over a hundred thousand deaths each year despite available vaccine. Therefore, there is an urgent need for treatment options to counteract these viral infections. The development of antiviral drugs in general stands as a huge challenge due to the rapid emergence of viral escape mutants. Here, we disclose the discovery of a small-molecule antiviral, compound 1 (ZHAWOC9045), active against several pneumo-/paramyxoviruses, including MeV, NiV, CDV, RSV, and parainfluenza virus type 5 (PIV-5). A series of mechanistic characterizations revealed that compound 1 targets a host factor which is indispensable for viral genome replication. Drug resistance profiling against a paramyxovirus model (CDV) demonstrated no detectable adaptation despite prolonged time of investigation, thereby mitigating the rapid emergence of escape variants. Furthermore, a thorough structure-activity relationship analysis of compound 1 led to the invention of 100-times-more potent-derivatives, e.g., compound 2 (ZHAWOC21026). Collectively, we present in this study an attractive host-directed pneumoviral/paramyxoviral replication inhibitor with potential therapeutic application. IMPORTANCE Measles virus, respiratory syncytial virus, canine distemper virus, and Nipah virus are some of the clinically significant RNA viruses that threaten substantial number of lives each year. Limited to no availability of treatment options for these viral infections makes it arduous to handle the outbreaks. This highlights the major importance of developing antivirals to fight not only ongoing infections but also potential future epidemics. Most of the discovered antivirals, in clinical trials currently, are virus targeted, which consequently poses the challenge of rapid emergence of escape variants. Here, we present compound 1 (ZHAWOC9045), discovered to target viral replication in a host-dependent manner, thereby exhibiting broad-spectrum activity against several members of the family Pneumo-/Paramyxoviridae. The inability of viruses to mutate against the inhibitor mitigated the critical issue of generation of escape variants. Importantly, compound 1 was successfully optimized to a highly potent variant, compound 2 (ZHAWOC21026), with a promising profile for pharmacological intervention.
Insights
A new small-molecule antiviral, compound 1, effectively inhibits replication of dangerous pneumo- and paramyxoviruses like measles virus. This host-directed approach prevents viral escape mutants, offering a promising therapeutic strategy against these significant global health threats.
Area of Science:
- Virology
- Drug Discovery
- Molecular Biology
Background:
- Paramyxoviridae and Pneumoviridae viruses, including measles virus (MeV), Nipah virus (NiV), canine distemper virus (CDV), and respiratory syncytial virus (RSV), cause significant global mortality.
- Existing treatments are limited, and the rapid emergence of viral escape mutants poses a major challenge for antiviral drug development.
Purpose of the Study:
- To discover and characterize a novel small-molecule antiviral agent targeting pneumo- and paramyxoviruses.
- To investigate the mechanism of action and potential for developing derivatives with enhanced potency and reduced viral resistance.
Main Methods:
- Screening for small-molecule inhibitors against pneumo-/paramyxoviruses.
- Mechanistic studies to identify the host factor targeted by the antiviral.
- Drug resistance profiling using a paramyxovirus model (CDV).
- Structure-activity relationship (SAR) analysis to optimize lead compounds.
Main Results:
- Compound 1 (ZHAWOC9045) demonstrated broad-spectrum activity against MeV, NiV, CDV, RSV, and parainfluenza virus type 5 (PIV-5).
- Compound 1 targets a host factor essential for viral genome replication, showing no detectable viral adaptation or resistance development in prolonged studies.
- SAR analysis led to the development of significantly more potent derivatives, such as compound 2 (ZHAWOC21026).
Conclusions:
- Compound 1 is a potent, host-directed inhibitor of pneumo- and paramyxoviral replication with a low propensity for resistance.
- Optimized derivatives like compound 2 show therapeutic potential for treating infections caused by these clinically relevant viruses.
- This host-targeting strategy offers a promising avenue for combating viral infections and preventing future epidemics.
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