Literature DB >> 25446186

Cyclic stretch of embryonic cardiomyocytes increases proliferation, growth, and expression while repressing Tgf-β signaling.

Indroneal Banerjee1, Katrina Carrion2, Ricardo Serrano3, Jeffrey Dyo2, Roman Sasik4, Sean Lund5, Erik Willems6, Seema Aceves7, Rudolph Meili8, Mark Mercola6, Ju Chen1, Alexander Zambon9, Gary Hardiman10, Taylor A Doherty5, Stephan Lange1, Juan C del Álamo11, Vishal Nigam12.   

Abstract

Perturbed biomechanical stimuli are thought to be critical for the pathogenesis of a number of congenital heart defects, including Hypoplastic Left Heart Syndrome (HLHS). While embryonic cardiomyocytes experience biomechanical stretch every heart beat, their molecular responses to biomechanical stimuli during heart development are poorly understood. We hypothesized that biomechanical stimuli activate specific signaling pathways that impact proliferation, gene expression and myocyte contraction. The objective of this study was to expose embryonic mouse cardiomyocytes (EMCM) to cyclic stretch and examine key molecular and phenotypic responses. Analysis of RNA-Sequencing data demonstrated that gene ontology groups associated with myofibril and cardiac development were significantly modulated. Stretch increased EMCM proliferation, size, cardiac gene expression, and myofibril protein levels. Stretch also repressed several components belonging to the Transforming Growth Factor-β (Tgf-β) signaling pathway. EMCMs undergoing cyclic stretch had decreased Tgf-β expression, protein levels, and signaling. Furthermore, treatment of EMCMs with a Tgf-β inhibitor resulted in increased EMCM size. Functionally, Tgf-β signaling repressed EMCM proliferation and contractile function, as assayed via dynamic monolayer force microscopy (DMFM). Taken together, these data support the hypothesis that biomechanical stimuli play a vital role in normal cardiac development and for cardiac pathology, including HLHS.
Copyright © 2014 Elsevier Ltd. All rights reserved.

Entities:  

Keywords:  Cardiac development; Cardiomyocytes; Contractility; Gene regulation; Hypoplastic Left Heart Syndrome; Mechanical stretch

Mesh:

Substances:

Year:  2014        PMID: 25446186      PMCID: PMC4302020          DOI: 10.1016/j.yjmcc.2014.11.003

Source DB:  PubMed          Journal:  J Mol Cell Cardiol        ISSN: 0022-2828            Impact factor:   5.000


  69 in total

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