Intercalated disc in failing hearts from patients with dilated cardiomyopathy: Its role in the depressed left
Ana Ortega1,2, Estefanía Tarazón1,2, Carolina Gil-Cayuela1,2
1Cardiocirculatory Unit, Health Research Institute La Fe, Valencia, Spain.
Insights
Dilated cardiomyopathy (DCM) involves altered heart structure and cell adhesion. This study found specific cell adhesion genes (GJA3, DSP, CTNNA3) are linked to left ventricular function and are structurally compromised in DCM patients.
Area of Science:
- Cardiology
- Molecular Biology
- Biochemistry
Background:
- Dilated cardiomyopathy (DCM) is characterized by myocardial structural alterations and reduced cardiomyocyte adhesion.
- The intercalated disc (ID) is crucial for cardiomyocyte communication and structural integrity.
Purpose of the Study:
- To investigate the transcriptome of cell adhesion molecules in DCM patients.
- To correlate gene expression with left ventricular (LV) function decay.
- To analyze intercalated disc (ID) structure and protein expression in DCM.
Main Methods:
- RNA-sequencing of explanted LV samples from DCM and control groups, focusing on cell adhesion genes.
- Electron microscopy to visualize ID structure and convolution.
- Immunohistochemistry, RT-qPCR, and Western blot to assess ID protein and mRNA levels.
Main Results:
- Identified 29 differentially expressed genes, primarily ID constituents.
- Found significant associations between GJA3, DSP, and CTNNA3 expression and LV ejection fraction, systolic, and diastolic dimensions.
- Observed reduced ID convolution index and diminished expression of GJA3, DSP, and CTNNA3 at both protein and mRNA levels in DCM patients.
Conclusions:
- Significant gene and protein expression changes in ID components occur in DCM.
- GJA3, DSP, and CTNNA3 expression levels are strongly related to LV function in DCM.
- The intercalated disc is structurally compromised in DCM, offering potential therapeutic targets.
Abstract:
Alterations in myocardial structure and reduced cardiomyocyte adhesions have been previously described in dilated cardiomyopathy (DCM). We studied the transcriptome of cell adhesion molecules in these patients and their relationships with left ventricular (LV) function decay. We also visualized the intercalated disc (ID) structure and organization. The transcriptomic profile of 23 explanted LV samples was analyzed using RNA-sequencing (13 DCM, 10 control [CNT]), focusing on cell adhesion genes. Electron microscopy analysis to visualize ID structural differences and immunohistochemistry experiments of ID proteins was also performed. RT-qPCR and western blot experiments were carried out on ID components. We found 29 differentially expressed genes, most of all, constituents of the ID structure. We found that the expression of GJA3, DSP and CTNNA3 was directly associated with LV ejection fraction (r = 0.741, P = 0.004; r = 0.674, P = 0.011 and r = 0.565, P = 0.044, respectively), LV systolic (P = 0.003, P = 0.003, P = 0.028, respectively) and diastolic dimensions (P = 0.006, P = 0.001, P = 0.025, respectively). Electron microscopy micrographs showed a reduced ID convolution index and immunogold labeling of connexin 46 (GJA gene), desmoplakin (DSP gene) and catenin α-3 (CTNNA3 gene) proteins in DCM patients. Moreover, we observed that protein and mRNA levels analyzed by RT-qPCR of these ID components were diminished in DCM group. In conclusion, we report significant gene and protein expression changes and found that the ID components GJA3, DSP and CTNNA3 were highly related to LV function. Microscopic observations indicated that ID is structurally compromised in these patients. These findings give new data for understanding the ventricular depression that characterizes DCM, opening new therapeutic perspectives for these critically diseased patients.
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