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.

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.