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Optimization of a Quantitative Micro-neutralization Assay
Published on: December 14, 2016
Micro-fusion inhibition tests: quantifying antibody neutralization of virus-mediated cell-cell fusion
Nazia Thakur1, Carina Conceicao1, Ariel Isaacs2
1The Pirbright Institute, Ash Road, Pirbright, Woking, GU24 0NF, UK.
Abstract:
Although enveloped viruses canonically mediate particle entry through virus-cell fusion, certain viruses can spread by cell-cell fusion, brought about by receptor engagement and triggering of membrane-bound, viral-encoded fusion proteins on the surface of cells. The formation of pathogenic syncytia or multinucleated cells is seen in vivo, but their contribution to viral pathogenesis is poorly understood. For the negative-strand paramyxoviruses respiratory syncytial virus (RSV) and Nipah virus (NiV), cell-cell spread is highly efficient because their oligomeric fusion protein complexes are active at neutral pH. The recently emerged severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2) has also been reported to induce syncytia formation in infected cells, with the spike protein initiating cell-cell fusion. Whilst it is well established that fusion protein-specific antibodies can block particle attachment and/or entry into the cell (canonical virus neutralization), their capacity to inhibit cell-cell fusion and the consequences of this neutralization for the control of infection are not well characterized, in part because of the lack of specific tools to assay and quantify this activity. Using an adapted bimolecular fluorescence complementation assay, based on a split GFP-Renilla luciferase reporter, we have established a micro-fusion inhibition test (mFIT) that allows the identification and quantification of these neutralizing antibodies. This assay has been optimized for high-throughput use and its applicability has been demonstrated by screening monoclonal antibody (mAb)-mediated inhibition of RSV and NiV fusion and, separately, the development of fusion-inhibitory antibodies following NiV vaccine immunization in pigs. In light of the recent emergence of coronavirus disease 2019 (COVID-19), a similar assay was developed for SARS-CoV-2 and used to screen mAbs and convalescent patient plasma for fusion-inhibitory antibodies. Using mFITs to assess antibody responses following natural infection or vaccination is favourable, as this assay can be performed entirely at low biocontainment, without the need for live virus. In addition, the repertoire of antibodies that inhibit cell-cell fusion may be different to those that inhibit particle entry, shedding light on the mechanisms underpinning antibody-mediated neutralization of viral spread.
Insights
Researchers developed a new assay to measure antibodies that block virus-induced cell-cell fusion, aiding in understanding viral spread and developing effective vaccines and treatments for respiratory syncytial virus (RSV) and SARS-CoV-2.
Area of Science:
- Virology
- Immunology
- Cell Biology
Background:
- Enveloped viruses typically enter cells via fusion, but some spread through cell-cell fusion mediated by viral proteins.
- Syncytia formation is observed in vivo, yet its role in viral pathogenesis remains unclear.
- Antibodies neutralizing viral particle entry are well-studied, but their ability to inhibit cell-cell fusion is less understood.
Purpose of the Study:
- To develop and validate a high-throughput assay for quantifying antibodies that inhibit virus-induced cell-cell fusion.
- To assess the role of cell-cell fusion inhibition in controlling viral spread for respiratory syncytial virus (RSV), Nipah virus (NiV), and SARS-CoV-2.
- To identify fusion-inhibitory antibodies in natural infections and vaccine responses.
Main Methods:
- An adapted bimolecular fluorescence complementation assay using a split GFP-Renilla luciferase reporter was developed.
- This assay, termed the micro-fusion inhibition test (mFIT), quantifies antibody-mediated inhibition of cell-cell fusion.
- The mFIT was optimized for high-throughput screening and applied to RSV, NiV, and SARS-CoV-2.
Main Results:
- The mFIT successfully identified and quantified monoclonal antibodies inhibiting RSV and NiV fusion.
- Fusion-inhibitory antibodies were detected following Nipah virus (NiV) vaccination in pigs.
- The assay was adapted for SARS-CoV-2, screening monoclonal antibodies and convalescent plasma for fusion-inhibitory activity.
- The mFIT can be performed at low biocontainment, without live virus, making it suitable for assessing antibody responses.
Conclusions:
- The micro-fusion inhibition test (mFIT) is a valuable tool for studying virus-induced cell-cell fusion and identifying neutralizing antibodies.
- This assay facilitates the assessment of antibody responses against viruses like RSV and SARS-CoV-2, crucial for vaccine and therapeutic development.
- Understanding antibodies that inhibit cell-cell fusion provides insights into viral spread mechanisms and antibody-mediated neutralization.
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