Measuring diffusion and binding kinetics by contact area FRAP

Timothy P Tolentino1, Jianhua Wu, Veronika I Zarnitsyna

  • 1Wallace H. Coulter Department of Biomedical Engineering and George W. Woodruff School of Mechanical Engineering, Georgia Institute of Technology, Atlanta, Georgia 30332, USA.

Biophysical Journal
|April 9, 2008
PubMed

Insights

Researchers developed a mathematical model and experimental method to study the immunological synapse. This approach measures kinetic rates and diffusion coefficients of interacting molecules within these crucial immune cell junctions.

Area of Science:

  • Immunology
  • Biophysics
  • Cell Biology

Background:

  • The immunological synapse is a specialized structure for immune cell communication.
  • Its formation involves the dynamic diffusion and binding of molecules within the contact area.
  • Synapse stability allows receptor-ligand interactions to reach equilibrium.

Purpose of the Study:

  • To extend a fluorescence recovery after photobleaching (FRAP) experiment to validate a mathematical model of the immunological synapse.
  • To investigate the reaction-diffusion dynamics of ligands within the established immunological synapse.
  • To develop a new method for in situ measurement of kinetic rates and diffusion coefficients.

Main Methods:

  • Developed a mathematical model for coupled reaction-diffusion processes in immunological synapses.
  • Extended contact area FRAP experiments to test the model's validity.
  • Analyzed fluorescence recovery time courses to extract kinetic and diffusion parameters.

Main Results:

  • Ligand accumulation within the synapse was observed due to binding activity and lateral mobility.
  • Reverse reaction rates in the 2D synapse were significantly slower (at least 100-fold) than in 3D solution.
  • A nonrecoverable fluorescence fraction was detected, indicating slow dissociation or diffusion of some ligands.

Conclusions:

  • The combined theoretical and experimental approach provides a novel method for in situ measurements.
  • This method quantifies kinetic rates, diffusion coefficients, and nonrecoverable fractions of interacting molecules.
  • The findings offer insights into the dynamics of immunological synapses and other cell-bilayer junctions.