| Literature DB >> 26154752 |
Yasuhiro Shudo1,2, Jeffrey E Cohen1,3, John W MacArthur1,3, Andrew B Goldstone1,3, Satoru Otsuru4, Alen Trubelja3, Jay Patel1, Bryan B Edwards1, George Hung3, Alexander S Fairman3, Christopher Brusalis3, William Hiesinger3, Pavan Atluri3, Arudo Hiraoka3, Shigeru Miyagawa2, Yoshiki Sawa2, Y Joseph Woo1.
Abstract
There exists a substantial body of work describing cardiac support devices to mechanically support the left ventricle (LV); however, these devices lack biological effects. To remedy this, we implemented a cell sheet engineering approach utilizing chondrocytes, which in their natural environment produce a relatively elastic extracellular matrix (ECM) for a cushioning effect. Therefore, we hypothesized that a chondrocyte cell sheet applied to infarcted and borderzone myocardium will biologically enhance the ventricular ECM and increase elasticity to augment cardiac function in a model of ischemic cardiomyopathy (ICM). Primary articular cartilage chondrocytes of Wistar rats were isolated and cultured on temperature-responsive culture dishes to generate cell sheets. A rodent ICM model was created by ligating the left anterior descending coronary artery. Rats were divided into two groups: cell sheet transplantation (1.0 × 10(7) cells/dish) and no treatment. The cell sheet was placed onto the surface of the heart covering the infarct and borderzone areas. At 4 weeks following treatment, the decreased fibrotic extension and increased elastic microfiber networks in the infarct and borderzone areas correlated with this technology's potential to stimulate ECM formation. The enhanced ventricular elasticity was further confirmed by the axial stretch test, which revealed that the cell sheet tended to attenuate tensile modulus, a parameter of stiffness. This translated to increased wall thickness in the infarct area, decreased LV volume, wall stress, mass, and improvement of LV function. Thus, the chondrocyte cell sheet strengthens the ventricular biomechanical properties by inducing the formation of elastic microfiber networks in ICM, resulting in attenuated myocardial stiffness and improved myocardial function.Entities:
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Year: 2015 PMID: 26154752 PMCID: PMC4605354 DOI: 10.1089/ten.TEA.2014.0155
Source DB: PubMed Journal: Tissue Eng Part A ISSN: 1937-3341 Impact factor: 3.845