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A target site for template-based design of measles virus entry inhibitors
Richard K Plemper1, Karl J Erlandson, Ami S Lakdawala
1Department of Microbiology and Immunology, School of Medicine, Emory University, Atlanta, GA 30322, USA.
Abstract:
Measles virus (MV) constitutes a principal cause of worldwide mortality, accounting for almost 1 million deaths annually. Although a live-attenuated vaccine protects against MV, vaccination efficiency of young infants is low because of interference by maternal antibodies. Parental concerns about vaccination safety further contribute to waning herd immunity in developed countries, resulting in recent MV outbreaks. The development of novel antivirals that close the vaccination gap in infants and silence viral outbreaks is thus highly desirable. We previously identified a microdomain in the MV fusion protein (F protein) that is structurally conserved in the paramyxovirus family and constitutes a promising target site for rationally designed antivirals. Here we report the template-based development of a small-molecule MV inhibitor, providing proof-of-concept for our approach. This lead compound specifically inhibits fusion and spread of live MV and MV glycoprotein-induced membrane fusion. The inhibitor induces negligible cytotoxicity and does not interfere with receptor binding or F protein biosynthesis or transport but prevents F protein-induced lipid mixing. Mutations in the postulated target site alter viral sensitivity to inhibition. In silico docking of the compound in this microdomain suggests a binding model that is experimentally corroborated by a structure-activity analysis of the compound and the inhibition profile of mutated F proteins. A second-generation compound designed on the basis of the interaction model shows a 200-fold increase in antiviral activity, creating the basis for novel MV therapeutics. This template-based design approach for MV may be applicable to other clinically relevant members of the paramyxovirus family.
Insights
Researchers developed a novel small-molecule inhibitor targeting the measles virus (MV) fusion protein. This antiviral effectively blocks MV spread and membrane fusion, offering a promising therapeutic strategy against measles outbreaks.
Area of Science:
- Virology
- Drug Discovery
- Structural Biology
Background:
- Measles virus (MV) causes significant global mortality, with vaccination challenges in infants due to maternal antibodies.
- Waning herd immunity and recent outbreaks highlight the need for alternative measles control strategies beyond vaccination.
Purpose of the Study:
- To develop novel antiviral agents targeting a conserved microdomain in the MV fusion (F) protein.
- To provide proof-of-concept for template-based drug design against measles virus.
Main Methods:
- Identified a conserved microdomain on the MV F protein as a potential antiviral target.
- Employed template-based drug design to develop small-molecule inhibitors.
- Utilized in silico docking and structure-activity relationship analysis to guide compound optimization.
Main Results:
- Developed a lead compound that specifically inhibits MV fusion and viral spread without significant cytotoxicity.
- Demonstrated that mutations in the target microdomain alter viral sensitivity to the inhibitor.
- Designed a second-generation compound with a 200-fold increase in antiviral potency.
Conclusions:
- Template-based design targeting the MV F protein microdomain is a viable strategy for developing effective measles antivirals.
- The developed inhibitors show potential for closing the infant vaccination gap and preventing measles outbreaks.
- This approach may be applicable to developing therapeutics for other paramyxoviruses.
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