Literature DB >> 18684206

Hydrogel-based engineered skeletal muscle grafts normalize heart function early after myocardial infarction.

Marie-Noëlle Giraud1, Erick Ayuni, Stéphane Cook, Matthias Siepe, Thierry P Carrel, Hendrik T Tevaearai.   

Abstract

Tissue engineering represents an attractive approach for the treatment of congestive heart failure. The influence of the differentiation of myogenic graft for functional recovery is not defined. We engineered a biodegradable skeletal muscle graft (ESMG) tissue and investigated its functional effect after implantation on the epicardium of an infarcted heart segment. ESMGs were synthesized by mixing collagen (2 mg/mL), Matrigel (2 mg/mL), and rat skeletal muscle cells (10(6)). Qualitative and quantitative aspects of ESMGs were optimized. Two weeks following coronary ligation, the animals were randomized in three groups: ESMG glued to the epicardial surface with fibrin (ESMG, n = 7), fibrin alone (fibrin, n = 5), or sham operation (sham, n = 4). Echocardiography, histology, and immunostaining were performed 4 weeks later. A cohesive three-dimensional tissular structure formed in vitro within 1 week. Myoblasts differentiated into randomly oriented myotubes. Four weeks postimplantation, ESMGs were vascularized and invaded by granulation tissue. Mean fractional shortening (FS) was, however, significantly increased in the ESMG group as compared with preimplantation values (42 +/- 6 vs. 33 +/- 5%, P < 0.05) and reached the values of controlled noninfarcted animals (control, n = 5; 45 +/- 3%; not significant). Pre- and postimplantation FS did not change over these 4 weeks in the sham group and the fibrin-treated animals. This study showed that it is possible to improve systolic heart function following myocardial infarction through implantation of differentiated muscle fibers seeded on a gel-type scaffold despite a low rate of survival.

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Year:  2008        PMID: 18684206     DOI: 10.1111/j.1525-1594.2008.00595.x

Source DB:  PubMed          Journal:  Artif Organs        ISSN: 0160-564X            Impact factor:   3.094


  22 in total

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Review 3.  Electrical and Mechanical Strategies to Enable Cardiac Repair and Regeneration.

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4.  Prevascularized microtemplated fibrin scaffolds for cardiac tissue engineering applications.

Authors:  Kassandra S Thomson; F Steven Korte; Cecilia M Giachelli; Buddy D Ratner; Michael Regnier; Marta Scatena
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5.  Cell-based therapy for heart failure in rat: double thoracotomy for myocardial infarction and epicardial implantation of cells and biomatrix.

Authors:  Aurélien Frobert; Jérémy Valentin; Stéphane Cook; Justine Lopes-Vicente; Marie-Noëlle Giraud
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Review 6.  Stem Cell Therapies in Cardiovascular Disease.

Authors:  Maia Terashvili; Zeljko J Bosnjak
Journal:  J Cardiothorac Vasc Anesth       Date:  2018-04-26       Impact factor: 2.628

7.  Swelling equilibrium of dentin adhesive polymers formed on the water-adhesive phase boundary: experiments and micromechanical model.

Authors:  A Misra; R Parthasarathy; Q Ye; V Singh; P Spencer
Journal:  Acta Biomater       Date:  2013-09-26       Impact factor: 8.947

Review 8.  Skeletal myoblasts for cardiac repair.

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Journal:  Regen Med       Date:  2010-11       Impact factor: 3.806

Review 9.  Cardiac tissue engineering using stem cells.

Authors:  Nenad Bursac
Journal:  IEEE Eng Med Biol Mag       Date:  2009 Mar-Apr

10.  Fate of modular cardiac tissue constructs in a syngeneic rat model.

Authors:  Brendan M Leung; Yasuo Miyagi; Ren-Ke Li; Michael V Sefton
Journal:  J Tissue Eng Regen Med       Date:  2013-03-15       Impact factor: 3.963

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