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Updated: Aug 13, 2026

Adhesion Frequency Assay for In Situ Kinetics Analysis of Cross-Junctional Molecular Interactions at the Cell-Cell Interface
Published on: November 2, 2011
Sequential binding of CD11a/CD18 and CD11b/CD18 defines neutrophil capture and stable adhesion to intercellular
E R Hentzen1, S Neelamegham, G S Kansas
1Speros Martel Section of Leukocyte Biology, Department of Pediatrics, Baylor College of Medicine, Houston, TX, USA.
Insights
Neutrophil adhesion to ICAM-1 involves CD11a/CD18 for initial capture and CD11b/CD18 for stable adhesion. Increased ICAM-1 on inflamed endothelium enhances capture efficiency under shear stress.
Area of Science:
- Immunology
- Cellular Biology
- Biophysics
Background:
- Neutrophil adhesion is crucial for immune responses and is mediated by integrins like CD11a/CD18 and CD11b/CD18 interacting with ICAM-1.
- Understanding the dynamics of this interaction under varying conditions is vital for comprehending inflammatory processes.
Purpose of the Study:
- To investigate the distinct roles of CD11a/CD18 and CD11b/CD18 in neutrophil adhesion to ICAM-1.
- To quantify the impact of ICAM-1 surface density and shear rate on adhesion efficiency and stability.
Main Methods:
- Utilized a cone-plate viscometer to shear neutrophils and ICAM-1-transfected cells.
- Employed 2-color flow cytometry to measure heterotypic aggregate formation.
- Applied 2-body collision theory to calculate adhesion efficiency.
Main Results:
- Adhesion efficiency was regulated by both ICAM-1 density and shear rate.
- CD11a/CD18 mediated initial capture, enhanced by chemotactic stimulation.
- CD11b/CD18 was essential for aggregate stability at higher shear stresses and longer durations.
Conclusions:
- Neutrophil adhesion to ICAM-1 is a sequential process: CD11a/CD18-dependent capture followed by CD11b/CD18-mediated stabilization.
- Increased ICAM-1 expression, as seen in inflamed endothelium, broadens the shear conditions permissive for neutrophil capture via beta(2)-integrins.
Abstract:
The relative contributions of CD11a/CD18 and CD11b/CD18 to the dynamics and strength of neutrophil adhesion to intercellular adhesion molecule (ICAM)-1-transfected cells were examined over the time course of chemotactic stimulation. Suspensions of neutrophils and transfectants were sheared in a cone-plate viscometer, and formation of heterotypic aggregates was measured by 2-color flow cytometry. The 2-body collision theory was used to compute adhesion efficiency, defined as the proportion of collisions between neutrophils and target cells that resulted in capture. ICAM-1 surface density and shear rate both regulated adhesion efficiency. Target cells expressing approximately 1000 ICAM-1 sites/microm(2) (I(low)) were captured with an efficiency of 0.15 at 100 s(-1), which decreased to zero at 300 s(-1). At 8-fold higher ICAM-1 expression (I(high)) corresponding to levels measured on interleukin-1-stimulated endothelium, efficiency was 0.3 at 100 s(-1) and remained above background to 900 s(-1). Shear alone was sufficient for CD11a/CD18-mediated adhesion to ICAM-1, and stimulation with formyl-methionyl-leucyl-phenylalanine boosted capture efficiency through CD11a/CD18 by 4-fold. In comparison, CD11b/CD18 supported one third of this efficiency, but was necessary for aggregate stability over several minutes of shear and at shear stresses exceeding 5 dyne/cm(2). Hydrodynamics influenced capture efficiency predominantly through the collisional contact duration, predicted to be approximately 9 milliseconds for successful capture of I(low) and 4 milliseconds for I(high). The implication is that an increase in ICAM-1 from resting levels to those on inflamed endothelium effectively increases the permissible shear in which capture through beta(2)-integrins may occur. Neutrophil adhesion to ICAM-1 appears to be a cooperative and sequential process of CD11a-dependent capture followed by CD11b-mediated stabilization.
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