DocumentCode :
3300598
Title :
Structural-mechanical coupling between accordion-like honeycomb scaffold, collagen and cardiomyocytes in engineered cardiac tissues
Author :
Jean, A. ; Bass, S.R. ; Dizky, J.L. ; Engelmayr, G.C., Jr.
Author_Institution :
Dept. of Bioeng., Pennsylvania State Univ., University Park, PA, USA
fYear :
2011
fDate :
1-3 April 2011
Firstpage :
1
Lastpage :
2
Abstract :
Mechanical and morphological anisotropy play key roles in the function of native cardiac tissues. In the current study, finite element simulations, morphological and mechanical analysis were used to investigate interactions between the geometry of accordion-like honeycomb poly(glycerol sebacate) scaffolds and cardiomyocytes seeded via a collagen solution gelled within the pores. Specifically, the mechanical behavior of the accordion-like honeycomb scaffold itself, as well as the statistical arrangement of the collagen fibrils within the pores, were determined from uniaxial tensile testing, finite element simulations, and image analysis of confocal reflectance micrographs. Further, the shape, orientation, and deformation of individual, fluorescently labeled cardiomyocytes within the collagen gel-filled accordion-like honeycomb pores, were measured from 3-D reconstructions of laser scanning confocal z-stacks and compared with finite element predictions. Collectively, these results contribute toward our understanding of how scaffold microarchitecture imparts at both the macro-and micro-scales in promoting the formation of anisotropic engineered tissues mimicking myocardial structural-mechanics.
Keywords :
Poisson ratio; biomedical materials; cardiology; cellular biophysics; finite element analysis; fluorescence spectroscopy; honeycomb structures; optical microscopy; polymers; tensile testing; tissue engineering; accordion like honeycomb scaffold; cardiomyocyte deformation; cardiomyocyte orientation; cardiomyocyte shape; collagen fibrils; confocal reflectance micrographs; engineered cardiac tissues; finite element simulations; fluorescently labeled cardiomyocytes; gelled collagen solution; image analysis; laser scanning confocal z-stacks; mechanical analysis; mechanical anisotropy; morphological analysis; morphological anisotropy; myocardial structural mechanics; native cardiac tissue function; poly(glycerol sebacate) scaffold geometry; scaffold mechanical behavior; seeded cardiomyocytes; structural-mechanical coupling; uniaxial tensile testing; Analytical models; Anisotropic magnetoresistance; Cardiac tissue; Finite element methods; Fluorescence; Morphology; Shape;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Bioengineering Conference (NEBEC), 2011 IEEE 37th Annual Northeast
Conference_Location :
Troy, NY
ISSN :
2160-7001
Print_ISBN :
978-1-61284-827-3
Type :
conf
DOI :
10.1109/NEBC.2011.5778705
Filename :
5778705
Link To Document :
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