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Published on: July 27, 2022
Endothelial cells regulate cardiac myocyte reorganisation through β1-integrin signalling
1College of Life Science, Northeast Agricultural University, Harbin, P.R. China.
Insights
Endothelial cells guide cardiomyocyte organization via β1-integrin. Combined cell transplantation effectively repairs heart damage in a mouse model of ischemic cardiomyopathy.
Area of Science:
- Cardiovascular Biology
- Cellular and Molecular Medicine
- Regenerative Medicine
Background:
- Cardiac capillaries are vital for heart function, with endothelial cells influencing cardiomyocyte development.
- The precise mechanisms of endothelial cell-cardiomyocyte interaction remain largely unexplored.
Purpose of the Study:
- To elucidate the role of endothelial cells in cardiomyocyte spatial reorganization and cytoskeletal dynamics.
- To investigate the therapeutic potential of combined endothelial cell-cardiac myocyte transplantation for ischemic cardiomyopathy.
Main Methods:
- Utilized a transwell co-culture system to study endothelial cell paracrine effects on cardiomyocytes.
- Employed β1-integrin function-blocking antibodies to assess its role in cell interactions.
- Evaluated therapeutic efficacy in an acute myocardial infarction mouse model.
Main Results:
- Endothelial cells regulate cardiomyocyte spatial reorganization and cytoskeletal dynamics through β1-integrin induction.
- β1-integrin blockade impaired cardiomyocyte chemotaxis, microtubule extension, and stress fiber assembly.
- Combined transplantation synergistically enhanced ischemic myocardial repair, promoting angiogenesis and improving cardiac function.
Conclusions:
- β1-integrin is essential for cardiomyocyte-endothelial cell interactions.
- Combined endothelial cell and cardiac myocyte transplantation shows promise for treating ischemic cardiomyopathy.
Background:
In normal hearts, capillaries are densely distributed throughout the myocardial tissue, and the cross-talk between myocytes and capillary endothelial cells plays a pivotal role in regulating cardiac development, maturation and function. Although previous studies have suggested a role for the endothelium in the organisation of nearby cardiomyocytes, the underlying mechanism has yet to be illustrated.
Methods And Results:
Using a transwell coculture system, we studied the paracrine effect of endothelial cells on cardiomyocytes and found that the regulation of cardiomyocyte spatial reorganisation and cytoskeletal dynamics by endothelial cells was coupled with β1-integrin induction. To determine the role of β1-integrin in this process, we preincubated myocytes with a β1-integrin function-blocking antibody before coculture. β1-integrin blockage abolished myocyte chemotactic activity and inhibited microtubule extension and stress fibre assembly. We further evaluated the therapeutic potential of combined endothelial cell-cardiac myocyte transplantation against ischemic cardiomyopathy in an acute myocardial infarction (AMI) mouse model. The results showed that myocytes and endothelial cells synergistically promoted ischemic myocardial repair, as evidenced by the robust engraftment and migration of implanted cells within the infarcted area, as well as the stimulation of angiogenesis, the attenuation of scar tissue and the improvement of cardiac function.
Conclusion:
Our study demonstrated the necessity of β1-integrin in the interactions between cardiomyocytes and endothelial cells and presented a novel combined transplantation approach that might hold promise for treating ischemic cardiomyopathy.
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