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Updated: Aug 11, 2026

Adhesion Frequency Assay for In Situ Kinetics Analysis of Cross-Junctional Molecular Interactions at the Cell-Cell Interface
Published on: November 2, 2011
Force spectroscopy of the leukocyte function-associated antigen-1/intercellular adhesion molecule-1 interaction
Xiaohui Zhang1, Ewa Wojcikiewicz, Vincent T Moy
1Department of Physiology and Biophysics, University of Miami School of Medicine, Florida 33136, USA.
Insights
Atomic force microscopy revealed the energy landscape of leukocyte function-associated antigen-1 (LFA-1) binding to intercellular adhesion molecule-1 (ICAM-1). Divalent cations like Mg(2+) stabilize the interaction, influencing its resistance to pulling forces.
Area of Science:
- Biophysics
- Cellular Adhesion
- Immunology
Background:
- Leukocyte adhesion is critical for immune responses, involving interactions like leukocyte function-associated antigen-1 (LFA-1) with intercellular adhesion molecule-1 (ICAM-1).
- Understanding these interactions under physiological conditions, including blood flow and external forces, is essential.
- The mechanical properties of cell adhesion molecules significantly impact their function.
Purpose of the Study:
- To investigate the binding properties of the LFA-1/ICAM-1 interaction under steady-state and external pulling forces.
- To elucidate the energy landscape and energetic determinants of the LFA-1/ICAM-1 complex.
- To define how cofactors and mechanical forces modulate LFA-1/ICAM-1 binding.
Main Methods:
- Atomic force microscopy (AFM) was employed to measure single-molecule unbinding events between LFA-1 and ICAM-1.
- An experimental setup involved an LFA-1-expressing T cell hybridoma attached to an AFM cantilever and an ICAM-1 expressing surface.
- Force loading rates were varied over three orders of magnitude to analyze the force spectrum.
Main Results:
- AFM measurements revealed distinct inner (steep) and outer (wide) activation barriers governing LFA-1/ICAM-1 dissociation.
- Magnesium ions (Mg2+), a cofactor, increased the unbinding force in the slow loading regime, stabilizing the complex.
- EDTA, a chelator, suppressed the inner activation barrier, reducing the complex's resistance to force.
Conclusions:
- The equilibrium dissociation constant of LFA-1/ICAM-1 is primarily regulated by the outer activation barrier's energetics.
- The complex's ability to withstand external pulling forces is determined by the divalent cation-dependent inner activation barrier.
- These findings provide insights into the mechanical regulation of leukocyte adhesion.
Abstract:
Interactions between leukocyte function-associated antigen-1 (LFA-1) with its cognate ligand, intercellular adhesion molecule-1 (ICAM-1) play a crucial role in leukocyte adhesion. Because the cell and its adhesive components are subject to external perturbation from the surrounding flow of blood, it is important to understand the binding properties of the LFA-1/ICAM-1 interaction in both steady state and in the presence of an external pulling force. Here we report on atomic force microscopy (AFM) measurements of the unbinding of LFA-1 from ICAM-1. The single molecule measurements revealed the energy landscape corresponding to the dissociation of the LFA-1/ICAM-1 complex and provided the basis for defining the energetic determinants of the complex at equilibrium and under the influence of an external force. The AFM force measurements were performed in an experimental system consisting of an LFA-1-expressing T cell hybridoma, 3A9, attached to the end of the AFM cantilever and an apposing surface expressing ICAM-1. In measurements covering three orders of magnitude change in force loading rate, the LFA-1/ICAM-1 force spectrum (i.e., unbinding force versus loading rate) revealed a fast and a slow loading regime that characterized a steep inner activation barrier and a wide outer activation barrier, respectively. The addition of Mg(2+), a cofactor that stabilizes the LFA-1/ICAM-1 interaction, elevated the unbinding force of the complex in the slow loading regime. In contrast, the presence of EDTA suppressed the inner barrier of the LFA-1/ICAM-1 complex. These results suggest that the equilibrium dissociation constant of the LFA-1/ICAM-1 interaction is regulated by the energetics of the outer activation barrier of the complex, while the ability of the complex to resist a pulling force is determined by the divalent cation-dependent inner activation barrier.
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