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Updated: May 29, 2025

Method for Measurement of Viral Fusion Kinetics at the Single Particle Level
Published on: September 7, 2009
Fluorescence Loss After Photoactivation (FLAPh): A Pulse-Chase Cellular Assay for Understanding Kinetics and Dynamics
Temitope Akhigbe Etibor1,2, Tiago Paixão1, Maria João Amorim3,4
1Cell Biology of Viral Infection Lab (CBV), Instituto Gulbenkian de Ciência (IGC) - Fundação Calouste Gulbenkian, Oeiras, Portugal.
Abstract:
Influenza A virus (IAV) relies on host cellular machinery for replication. Upon infection, the eight genomic segments, independently packed as viral ribonucleoproteins (vRNPs), are released into the cytosol before nuclear import for viral replication. After nucleocytoplasmic transport, the resulting progeny vRNPs reach the cytosol, accumulating in highly mobile and dynamic viral inclusions that display liquid properties. Being sites postulated to support IAV genome assembly, the biophysical properties of IAV inclusions may be critical for function. In agreement, imposing liquid-to-solid transitions was demonstrated to impact viral replication negatively. Therefore, screening for host factors or compounds able to alter the material properties may provide the molecular basis for how influenza genomic complex forms as well as identify novel antivirals. Conventional techniques employed to investigate biomolecular condensates' material properties include fluorescence correlation spectroscopy, raster image correlation spectroscopy, single molecule or microrheology particle tracking, and Fluorescence Recovery After Photobleaching (FRAP). These approaches allow measuring molecular dynamics in systems that do not move very much. However, the analysis of highly mobile intracellular condensates, such as IAV inclusions, poses significant challenges as these structures not only constantly move within the cell but also exchange material, fusing, and dividing, rendering the quantitation of internal rearrangements and diffusion coefficients of molecules within condensates inaccurate. As an alternative, we opted for measuring the kinetics and the exchange of material between IAV inclusions using the Fluorescence Loss After Photoactivation (FLAPh) technique. It involves pulse photoactivation of individual or pools of viral inclusions in the cell, and chasing over time in photoactivated and non-photoactivated regions. This approach is suitable for quantifying the movement and spatial distribution of components within inclusions over time, enabling the determination of both the distance and speed from a specific cellular location. As a result, this method allows the quantification of decay profiles, half-lives, decay constant rate, and mobile and immobile fractions in viral inclusions. It, therefore, enables high throughput screenings for compounds or host factors that affect this dynamism and indirectly allows assessing the material properties of IAV inclusions.
Insights
Influenza A virus (IAV) replication involves dynamic viral inclusions. A new method, Fluorescence Loss After Photoactivation (FLAPh), quantifies material properties of these mobile inclusions to find new antivirals.
Area of Science:
- Virology
- Cell Biology
- Biophysics
Background:
- Influenza A virus (IAV) replication depends on host cell machinery, with viral ribonucleoproteins (vRNPs) forming dynamic, liquid-like inclusions in the cytosol.
- The biophysical properties of these inclusions are crucial for viral replication, as solid-state transitions negatively impact it.
- Conventional methods struggle to analyze the dynamics of highly mobile intracellular condensates like IAV inclusions.
Purpose of the Study:
- To develop and apply a novel method for assessing the material properties of highly mobile IAV inclusions.
- To enable high-throughput screening for host factors or compounds that modulate the dynamics of IAV inclusions.
- To gain insights into the formation of the influenza genomic complex and identify potential antiviral targets.
Main Methods:
- Utilized the Fluorescence Loss After Photoactivation (FLAPh) technique to measure material exchange kinetics in IAV inclusions.
- Applied pulse photoactivation of viral inclusions and tracked material redistribution over time.
- Quantified decay profiles, half-lives, decay rates, and mobile/immobile fractions within inclusions.
Main Results:
- FLAPh successfully quantified material exchange and dynamics within mobile IAV inclusions.
- The method allows for accurate assessment of molecular movement and spatial distribution within these structures.
- Demonstrated the utility of FLAPh for high-throughput screening of compounds affecting inclusion properties.
Conclusions:
- The FLAPh technique provides a robust method for analyzing the biophysical properties of dynamic viral inclusions.
- This approach facilitates the identification of host factors and compounds that influence viral replication by altering inclusion material properties.
- FLAPh offers a promising avenue for discovering novel antiviral strategies targeting influenza virus assembly and replication.

