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Inhibiting Human Parainfluenza Virus Infection by Preactivating the Cell Entry Mechanism
S F Bottom-Tanzer1,2, K Rybkina1,2, J N Bell1,2
1Department of Pediatrics, Columbia University Medical Center, New York, New York, USA.
Abstract:
Paramyxoviruses, specifically, the childhood pathogen human parainfluenza virus type 3, are internalized into host cells following fusion between the viral and target cell membranes. The receptor binding protein, hemagglutinin (HA)-neuraminidase (HN), and the fusion protein (F) facilitate viral fusion and entry into the cell through a coordinated process involving HN activation by receptor binding, which triggers conformational changes in the F protein to activate it to reach its fusion-competent state. Interfering with this process through premature activation of the F protein has been shown to be an effective antiviral strategy in vitro. Conformational changes in the F protein leading to adoption of the postfusion form of the protein-prior to receptor engagement of HN at the host cell membrane-render the virus noninfectious. We previously identified a small compound (CSC11) that implements this antiviral strategy through an interaction with HN, causing HN to activate F in an untimely process. To assess the functionality of such compounds, it is necessary to verify that the postfusion state of F has been achieved. As demonstrated by Melero and colleagues, soluble forms of the recombinant postfusion pneumovirus F proteins and of their six helix bundle (6HB) motifs can be used to generate postfusion-specific antibodies. We produced novel anti-HPIV3 F conformation-specific antibodies that can be used to assess the functionality of compounds designed to induce F activation. In this study, using systematic chemical modifications of CSC11, we synthesized a more potent derivative of this compound, CM9. Much like CSC11, CM9 causes premature triggering of the F protein through an interaction with HN prior to receptor engagement, thereby preventing fusion and subsequent infection. In addition to validating the potency of CM9 using plaque reduction, fusion inhibition, and binding avidity assays, we confirmed the transition to a postfusion conformation of F in the presence of CM9 using our novel anti-HPIV3 conformation-specific antibodies. We present both CM9 and these newly characterized postfusion antibodies as novel tools to explore and develop antiviral approaches. In turn, these advances in both our molecular toolset and our understanding of HN-F interaction will support development of more-effective antivirals. Combining the findings described here with our recently described physiologically relevant ex vivo system, we have the potential to inform the development of therapeutics to block viral infection.IMPORTANCE Paramyxoviruses, including human parainfluenza virus type 3, are internalized into host cells by fusion between viral and target cell membranes. The receptor binding protein, hemagglutinin-neuraminidase (HN), and the fusion protein (F) facilitate viral fusion and entry into cells through a process involving HN activation by receptor binding, which triggers conformational changes in F to activate it to reach its fusion-competent state. Interfering with this process through premature activation of the F protein may be an effective antiviral strategy in vitro We identified and optimized small compounds that implement this antiviral strategy through an interaction with HN, causing HN to activate F in an untimely fashion. To address that mechanism, we produced novel anti-HPIV3 F conformation-specific antibodies that can be used to assess the functionality of compounds designed to induce F activation. Both the novel antiviral compounds that we present and these newly characterized postfusion antibodies are novel tools for the exploration and development of antiviral approaches.
Insights
Researchers developed a potent antiviral compound, CM9, that prematurely activates the fusion protein of human parainfluenza virus type 3, preventing infection. Novel antibodies were also created to confirm the compound
Area of Science:
- Virology
- Structural Biology
- Drug Discovery
Background:
- Paramyxoviruses, like human parainfluenza virus type 3 (HPIV3), infect cells via membrane fusion mediated by the hemagglutinin-neuraminidase (HN) and fusion (F) proteins.
- HN binds to host cell receptors, triggering conformational changes in F to enable viral entry.
- Premature activation of the F protein is a promising antiviral strategy, rendering the virus non-infectious by inducing a postfusion state before receptor engagement.
Purpose of the Study:
- To synthesize and characterize a more potent derivative of the antiviral compound CSC11, named CM9, targeting HPIV3.
- To develop novel conformation-specific antibodies against the HPIV3 F protein to validate antiviral compound efficacy.
- To explore CM9 and the new antibodies as tools for developing novel antiviral therapies against paramyxoviruses.
Main Methods:
- Systematic chemical modifications of CSC11 to create the derivative CM9.
- Assessing CM9's antiviral potency using plaque reduction, fusion inhibition, and binding avidity assays.
- Producing novel anti-HPIV3 F conformation-specific antibodies and utilizing them to confirm F protein transition to the postfusion state in the presence of CM9.
Main Results:
- The novel compound CM9 demonstrated enhanced potency in inhibiting HPIV3 infection compared to CSC11.
- CM9 effectively caused premature activation of the HPIV3 F protein via interaction with HN, preventing viral fusion.
- Newly developed conformation-specific antibodies confirmed the induction of the F protein's postfusion state by CM9.
Conclusions:
- CM9 represents a potent antiviral agent that functions by prematurely triggering the HPIV3 F protein, offering a new therapeutic avenue.
- The novel postfusion-specific antibodies are valuable tools for assessing the efficacy of antiviral compounds targeting viral fusion.
- The combined development of CM9 and these antibodies advances the understanding of HN-F interactions and supports the creation of effective paramyxovirus antivirals.
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