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More Than Just a Simple Cardiac Envelope; Cellular Contributions of the Epicardium

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Specialty Cell Biology
Date 2017 May 17
PMID 28507986
Citations 12
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Abstract

The adult pumping heart is formed by distinct tissue layers. From inside to outside, the heart is composed by an internal endothelial layer, dubbed the endocardium, a thick myocardial component which supports the pumping capacity of the heart and exteriorly covered by a thin mesothelial layer named the epicardium. Cardiac insults such as coronary artery obstruction lead to ischemia and thus to an irreversible damage of the myocardial layer, provoking in many cases heart failure and death. Thus, searching for new pathways to regenerate the myocardium is an urgent biomedical need. Interestingly, the capacity of heart regeneration is present in other species, ranging from fishes to neonatal mammals. In this context, several lines of evidences demonstrated a key regulatory role for the epicardial layer. In this manuscript, we provide a state-of-the-art review on the developmental process leading to the formation of the epicardium, the distinct pathways controlling epicardial precursor cell specification and determination and current evidences on the regenerative potential of the epicardium to heal the injured heart.

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References
1.
Bax N, Lie-Venema H, Vicente-Steijn R, Bleyl S, van den Akker N, Maas S . Platelet-derived growth factor is involved in the differentiation of second heart field-derived cardiac structures in chicken embryos. Dev Dyn. 2009; 238(10):2658-69. DOI: 10.1002/dvdy.22073. View

2.
Ando K, Takahashi M, Yamagishi T, Miyagawa-Tomita S, Imanaka-Yoshida K, Yoshida T . Tenascin C may regulate the recruitment of smooth muscle cells during coronary artery development. Differentiation. 2011; 81(5):299-306. DOI: 10.1016/j.diff.2011.03.002. View

3.
Azambuja A, Portillo-Sanchez V, Rodrigues M, Omae S, Schechtman D, Strauss B . Retinoic acid and VEGF delay smooth muscle relative to endothelial differentiation to coordinate inner and outer coronary vessel wall morphogenesis. Circ Res. 2010; 107(2):204-16. DOI: 10.1161/CIRCRESAHA.109.214650. View

4.
Adam O, Lohfelm B, Thum T, Gupta S, Puhl S, Schafers H . Role of miR-21 in the pathogenesis of atrial fibrosis. Basic Res Cardiol. 2012; 107(5):278. DOI: 10.1007/s00395-012-0278-0. View

5.
Smart N, Riley P . The epicardium as a candidate for heart regeneration. Future Cardiol. 2011; 8(1):53-69. PMC: 3977139. DOI: 10.2217/fca.11.87. View