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Updated: May 3, 2026

Bead Aggregation Assays for the Characterization of Putative Cell Adhesion Molecules
Published on: October 17, 2014
CADM1 controls actin cytoskeleton assembly and regulates extracellular matrix adhesion in human mast cells
Elena P Moiseeva1, Kees R Straatman2, Mark L Leyland3
1Institute for Lung Health, Dept. of Infection, Immunity and Inflammation, University of Leicester, Leicester, United Kingdom.
Abstract:
CADM1 is a major receptor for the adhesion of mast cells (MCs) to fibroblasts, human airway smooth muscle cells (HASMCs) and neurons. It also regulates E-cadherin and alpha6beta4 integrin in other cell types. Here we investigated a role for CADM1 in MC adhesion to both cells and extracellular matrix (ECM). Downregulation of CADM1 in the human MC line HMC-1 resulted not only in reduced adhesion to HASMCs, but also reduced adhesion to their ECM. Time-course studies in the presence of EDTA to inhibit integrins demonstrated that CADM1 provided fast initial adhesion to HASMCs and assisted with slower adhesion to ECM. CADM1 downregulation, but not antibody-dependent CADM1 inhibition, reduced MC adhesion to ECM, suggesting indirect regulation of ECM adhesion. To investigate potential mechanisms, phosphotyrosine signalling and polymerisation of actin filaments, essential for integrin-mediated adhesion, were examined. Modulation of CADM1 expression positively correlated with surface KIT levels and polymerisation of cortical F-actin in HMC-1 cells. It also influenced phosphotyrosine signalling and KIT tyrosine autophosphorylation. CADM1 accounted for 46% of surface KIT levels and 31% of F-actin in HMC-1 cells. CADM1 downregulation resulted in elongation of cortical actin filaments in both HMC-1 cells and human lung MCs and increased cell rigidity of HMC-1 cells. Collectively these data suggest that CADM1 is a key adhesion receptor, which regulates MC net adhesion, both directly through CADM1-dependent adhesion, and indirectly through the regulation of other adhesion receptors. The latter is likely to occur via docking of KIT and polymerisation of cortical F-actin. Here we propose a stepwise model of adhesion with CADM1 as a driving force for net MC adhesion.
Insights
Cell adhesion molecule 1 (CADM1) is crucial for mast cell (MC) adhesion to cells and extracellular matrix. It influences KIT signaling and actin polymerization, impacting MC adhesion dynamics.
Area of Science:
- Immunology
- Cell Biology
- Biochemistry
Background:
- Cell adhesion molecules play vital roles in cellular interactions and tissue organization.
- Mast cells (MCs) are key immune cells involved in allergic responses and tissue homeostasis.
- CADM1 (Cell Adhesion Molecule 1) is known to mediate cell-cell adhesion and regulate other adhesion molecules.
Purpose of the Study:
- To investigate the role of CADM1 in mast cell adhesion to other cells and the extracellular matrix (ECM).
- To elucidate the underlying mechanisms by which CADM1 influences mast cell adhesion.
- To explore the relationship between CADM1, KIT signaling, and actin cytoskeleton dynamics in mast cells.
Main Methods:
- Downregulation of CADM1 expression in HMC-1 cells (a human mast cell line).
- Assays measuring mast cell adhesion to human airway smooth muscle cells (HASMCs) and ECM.
- Analysis of phosphotyrosine signaling, KIT autophosphorylation, and F-actin polymerization.
- Assessment of cell rigidity and cortical actin filament morphology.
Main Results:
- CADM1 downregulation reduced mast cell adhesion to HASMCs and ECM.
- CADM1 mediated rapid initial adhesion to HASMCs and slower adhesion to ECM.
- CADM1 expression correlated positively with surface KIT levels and cortical F-actin polymerization.
- CADM1 downregulation altered actin filament structure and increased cell rigidity.
Conclusions:
- CADM1 is a critical regulator of mast cell adhesion, acting both directly and indirectly.
- CADM1 influences mast cell adhesion through modulation of KIT signaling and actin cytoskeleton organization.
- CADM1 acts as a driving force in a stepwise model of mast cell adhesion.
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