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Updated: Jul 29, 2025

Bead Aggregation Assays for the Characterization of Putative Cell Adhesion Molecules
Published on: October 17, 2014
cAMP: A master regulator of cadherin-mediated binding in endothelium, epithelium and myocardium
Franziska Vielmuth1, Mariya Y Radeva1, Sunil Yeruva1
1Chair of Vegetative Anatomy, Institute of Anatomy, Faculty of Medicine, LMU Munich, Munich, Germany.
Insights
Cyclic adenosine 3
Area of Science:
- Cell Biology
- Molecular Biology
- Physiology
Background:
- Cadherin-mediated cell adhesion is vital for tissue integrity and function.
- Dysregulation of this adhesion contributes to diseases like pemphigus and cardiomyopathy.
- Cyclic adenosine 3',5'-monophosphate (cAMP) is a key regulator of cell adhesion.
Purpose of the Study:
- To explore the role of cAMP in regulating cadherin-mediated cell adhesion.
- To identify molecular mechanisms underlying cAMP's effects on adhesion.
- To evaluate therapeutic potential of targeting these mechanisms.
Main Methods:
- Vascular physiology and cell biology models.
- Investigation of adherens junctions (AJ) and desmosomal contacts.
- Analysis of cAMP-mediated signaling pathways involving Rho GTPases and plakoglobin phosphorylation.
Main Results:
- cAMP regulates cadherin-mediated adhesion in endothelial, epithelial, and cardiac cells.
- Key mechanisms include protein kinase A and exchange protein directly activated by cAMP pathways.
- S665 phosphorylation of plakoglobin is a critical molecular event.
Conclusions:
- cAMP signaling is a central regulator of cadherin-mediated adhesion across various cell types.
- Targeting cAMP pathways, e.g., with phosphodiesterase 4 inhibitors like apremilast, can stabilize cell adhesion.
- This offers potential therapeutic strategies for diseases involving compromised cadherin binding.
Abstract:
Regulation of cadherin-mediated cell adhesion is crucial not only for maintaining tissue integrity and barrier function in the endothelium and epithelium but also for electromechanical coupling within the myocardium. Therefore, loss of cadherin-mediated adhesion causes various disorders, including vascular inflammation and desmosome-related diseases such as the autoimmune blistering skin dermatosis pemphigus and arrhythmogenic cardiomyopathy. Mechanisms regulating cadherin-mediated binding contribute to the pathogenesis of diseases and may also be used as therapeutic targets. Over the last 30 years, cyclic adenosine 3',5'-monophosphate (cAMP) has emerged as one of the master regulators of cell adhesion in endothelium and, more recently, also in epithelial cells as well as in cardiomyocytes. A broad spectrum of experimental models from vascular physiology and cell biology applied by different generations of researchers provided evidence that not only cadherins of endothelial adherens junctions (AJ) but also desmosomal contacts in keratinocytes and the cardiomyocyte intercalated discs are central targets in this scenario. The molecular mechanisms involve protein kinase A- and exchange protein directly activated by cAMP-mediated regulation of Rho family GTPases and S665 phosphorylation of the AJ and desmosome adaptor protein plakoglobin. In line with this, phosphodiesterase 4 inhibitors such as apremilast have been proposed as a therapeutic strategy to stabilize cadherin-mediated adhesion in pemphigus and may also be effective to treat other disorders where cadherin-mediated binding is compromised.
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