Defective Desmosomal Adhesion Causes Arrhythmogenic Cardiomyopathy by Involving an Integrin-αVβ6/TGF-β Signaling
Camilla Schinner1, Lifen Xu2, Henriette Franz1
1Department of Biomedicine, Section Anatomy (C. Schinner, H.F., A.Z., M.-T.W., M.R., P.H., C. Stüdle, P.I.M., V.S.), University of Basel, Switzerland.
Insights
Disrupting desmoglein-2 adhesion causes arrhythmogenic cardiomyopathy (ACM) in mice, revealing integrin-αVβ6 signaling as a fibrosis target. This study confirms dysfunctional adhesion in ACM and identifies potential therapeutic pathways.
Area of Science:
- Cardiology
- Molecular Biology
- Biochemistry
Background:
- Arrhythmogenic cardiomyopathy (ACM) involves cardiomyocyte loss and fibrofatty replacement, often linked to desmosomal gene mutations.
- The precise mechanisms by which desmosomal defects contribute to ACM pathogenesis remain incompletely understood.
- This study investigates the role of impaired desmosomal adhesion in the development and progression of ACM.
Purpose of the Study:
- To investigate the relevance of defective desmosomal adhesion in arrhythmogenic cardiomyopathy (ACM) development.
- To elucidate the molecular mechanisms linking desmosomal dysfunction to cardiac fibrosis and arrhythmias.
- To identify potential therapeutic targets for ACM.
Main Methods:
- Engineered a desmoglein-2 (DSG2) mutation (DSG2-W2A) to disrupt desmosomal binding in a mouse model.
- Assessed cardiac function and histology in mutant mice using echocardiography, ECG, and advanced microscopy.
- Analyzed transcriptomic data and validated findings in ACM patient samples and cardiac slice cultures.
Main Results:
- The DSG2-W2A mutation impaired intercellular adhesion and induced ACM-like phenotypes in mice, including fibrosis and systolic dysfunction.
- Transcriptomic analysis revealed deregulated integrin-αVβ6 and TGF-β signaling as key drivers of cardiac fibrosis.
- Inhibition of integrin-αVβ6 reduced profibrotic markers and fibrosis in mutant mice.
Conclusions:
- Disruption of desmosomal adhesion is sufficient to cause ACM, supporting the dysfunctional adhesion hypothesis.
- Integrin-αVβ6 and TGF-β signaling pathways are critical mediators of cardiac fibrosis in ACM.
- Targeting the integrin-αVβ6 pathway shows promise for ameliorating fibrosis in ACM.
Background:
Arrhythmogenic cardiomyopathy (ACM) is characterized by progressive loss of cardiomyocytes with fibrofatty tissue replacement, systolic dysfunction, and life-threatening arrhythmias. A substantial proportion of ACM is caused by mutations in genes of the desmosomal cell-cell adhesion complex, but the underlying mechanisms are not well understood. In the current study, we investigated the relevance of defective desmosomal adhesion for ACM development and progression.
Methods:
We mutated the binding site of DSG2 (desmoglein-2), a crucial desmosomal adhesion molecule in cardiomyocytes. This DSG2-W2A mutation abrogates the tryptophan swap, a central interaction mechanism of DSG2 on the basis of structural data. Impaired adhesive function of DSG2-W2A was confirmed by cell-cell dissociation assays and force spectroscopy measurements by atomic force microscopy. The DSG2-W2A knock-in mouse model was analyzed by echocardiography, ECG, and histologic and biomolecular techniques including RNA sequencing and transmission electron and superresolution microscopy. The results were compared with ACM patient samples, and their relevance was confirmed in vivo and in cardiac slice cultures by inhibitor studies applying the small molecule EMD527040 or an inhibitory integrin-αVβ6 antibody.
Results:
The DSG2-W2A mutation impaired binding on molecular level and compromised intercellular adhesive function. Mice bearing this mutation develop a severe cardiac phenotype recalling the characteristics of ACM, including cardiac fibrosis, impaired systolic function, and arrhythmia. A comparison of the transcriptome of mutant mice with ACM patient data suggested deregulated integrin-αVβ6 and subsequent transforming growth factor-β signaling as driver of cardiac fibrosis. Blocking integrin-αVβ6 led to reduced expression of profibrotic markers and reduced fibrosis formation in mutant animals in vivo.
Conclusions:
We show that disruption of desmosomal adhesion is sufficient to induce a phenotype that fulfils the clinical criteria to establish the diagnosis of ACM, confirming the dysfunctional adhesion hypothesis. Deregulation of integrin-αVβ6 and transforming growth factor-β signaling was identified as a central step toward fibrosis. A pilot in vivo drug test revealed this pathway as a promising target to ameliorate fibrosis. This highlights the value of this model to discern mechanisms of cardiac fibrosis and to identify and test novel treatment options for ACM.
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