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The Role of Transforming Growth Factor (TGF)-β in the Infarcted Myocardium

Overview
Journal J Thorac Dis
Specialty Pulmonary Medicine
Date 2017 Apr 28
PMID 28446968
Citations 65
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Abstract

The adult mammalian heart has negligible regenerative capacity. Following myocardial infarction, sudden necrosis of cardiomyocytes triggers an intense inflammatory reaction that clears the wound from dead cells and matrix debris, while activating a reparative program. A growing body of evidence suggests that members of the transforming growth factor (TGF)-β family critically regulate the inflammatory and reparative response following infarction. Although all three TGF-β isoforms (TGF-β1, -β2 and -β3) are markedly upregulated in the infarcted myocardium, information on isoform-specific actions is limited. Experimental studies have suggested that TGF-β exerts a wide range of actions on cardiomyocytes, fibroblasts, immune cells, and vascular cells. The findings are often conflicting, reflecting the context-dependence of TGF-β-mediated effects; conclusions are often based exclusively on studies and on associative evidence. TGF-β has been reported to modulate cardiomyocyte survival responses, promote monocyte recruitment, inhibit macrophage pro-inflammatory gene expression, suppress adhesion molecule synthesis by endothelial cells, promote myofibroblast conversion and extracellular matrix synthesis, and mediate both angiogenic and angiostatic effects. This review manuscript discusses our understanding of the cell biological effects of TGF-β in myocardial infarction. We discuss the relative significance of downstream TGF-β-mediated Smad-dependent and -independent pathways, and the risks and challenges of therapeutic TGF-β targeting. Considering the high significance of TGF-β-mediated actions , study of cell-specific effects and dissection of downstream signaling pathways are needed in order to design safe and effective therapeutic approaches.

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References
1.
Nelson B, Ralph P, Green S, Nacy C . Differential susceptibility of activated macrophage cytotoxic effector reactions to the suppressive effects of transforming growth factor-beta 1. J Immunol. 1991; 146(6):1849-57. View

2.
Behfar A, Zingman L, Hodgson D, Rauzier J, Kane G, Terzic A . Stem cell differentiation requires a paracrine pathway in the heart. FASEB J. 2002; 16(12):1558-66. DOI: 10.1096/fj.02-0072com. View

3.
Kottmann R, Kulkarni A, Smolnycki K, Lyda E, Dahanayake T, Salibi R . Lactic acid is elevated in idiopathic pulmonary fibrosis and induces myofibroblast differentiation via pH-dependent activation of transforming growth factor-β. Am J Respir Crit Care Med. 2012; 186(8):740-51. PMC: 3480515. DOI: 10.1164/rccm.201201-0084OC. View

4.
Dobaczewski M, Xia Y, Bujak M, Gonzalez-Quesada C, Frangogiannis N . CCR5 signaling suppresses inflammation and reduces adverse remodeling of the infarcted heart, mediating recruitment of regulatory T cells. Am J Pathol. 2010; 176(5):2177-87. PMC: 2861083. DOI: 10.2353/ajpath.2010.090759. View

5.
Wunsch M, Sharma H, Markert T, Bernotat-Danielowski S, Schott R, Kremer P . In situ localization of transforming growth factor beta 1 in porcine heart: enhanced expression after chronic coronary artery constriction. J Mol Cell Cardiol. 1991; 23(9):1051-62. DOI: 10.1016/0022-2828(91)91640-d. View