TY - JOUR
T1 - Evaluation of Pericardial Tissues from Assorted Species as a Tissue-Engineered Heart Valve Material
AU - Noble, Christopher
AU - Morse, David
AU - Lerman, Amir
AU - Young, Melissa
N1 - Funding Information:
This work is supported by the HH Sheikh Hamed bin Zayed Al Nahyan Program in Biological Valve Engineering. Dr Christopher Noble is supported through the Mayo Clinic Career Development Award in Cardiovascular Diseases Research Honoring Dr. Earl H. Wood.
Publisher Copyright:
© 2022, International Federation for Medical and Biological Engineering.
PY - 2022/2
Y1 - 2022/2
N2 - Decellularized pericardial tissue is a strong candidate for a TEHV material as ECM is present to guide cellular infiltration and fixed porcine and bovine pericardial tissue have existing use in bioprosthetic heart valves. In this work, we compare the mechanical and microstructural properties of decellularized-sterilized (DS) porcine, bovine, and bison pericardial tissues with respect to use as a TEHV. H&E staining was used to verify removal of cellular content post-decellularization and to evaluate collagen fiber structure. Additionally, uniaxial and biaxial tension testing were used to compare mechanical performance and, for the latter, acquire constitutive model parameters for subsequent finite element (FE) modeling. H&E staining revealed complete removal of cellular content and good collagen fiber structure. Tensile testing showed comparable mechanical strength between the three DS pericardial tissues and considerably stronger mechanical properties compared to native tissues. Bovine and bison DS pericardial tissues showed the strongest mechanical performance in the FE models with bison demonstrating the overall best mechanical characteristics. The increased thickness of bovine and bison tissues coupled with the strong mechanical behavior and ECM structure indicates that these materials will be resistant to damage until sufficient cellular infiltration has occurred such that damaged tissue can be repaired. Graphical abstract: [Figure not available: see fulltext.]
AB - Decellularized pericardial tissue is a strong candidate for a TEHV material as ECM is present to guide cellular infiltration and fixed porcine and bovine pericardial tissue have existing use in bioprosthetic heart valves. In this work, we compare the mechanical and microstructural properties of decellularized-sterilized (DS) porcine, bovine, and bison pericardial tissues with respect to use as a TEHV. H&E staining was used to verify removal of cellular content post-decellularization and to evaluate collagen fiber structure. Additionally, uniaxial and biaxial tension testing were used to compare mechanical performance and, for the latter, acquire constitutive model parameters for subsequent finite element (FE) modeling. H&E staining revealed complete removal of cellular content and good collagen fiber structure. Tensile testing showed comparable mechanical strength between the three DS pericardial tissues and considerably stronger mechanical properties compared to native tissues. Bovine and bison DS pericardial tissues showed the strongest mechanical performance in the FE models with bison demonstrating the overall best mechanical characteristics. The increased thickness of bovine and bison tissues coupled with the strong mechanical behavior and ECM structure indicates that these materials will be resistant to damage until sufficient cellular infiltration has occurred such that damaged tissue can be repaired. Graphical abstract: [Figure not available: see fulltext.]
KW - Bison pericardium
KW - Decellularized pericardium
KW - Finite element analysis
KW - Tensile testing
KW - Tissue-engineered heart valve
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U2 - 10.1007/s11517-021-02498-5
DO - 10.1007/s11517-021-02498-5
M3 - Article
AN - SCOPUS:85122232328
SN - 0140-0118
VL - 60
SP - 393
EP - 406
JO - Medical and Biological Engineering and Computing
JF - Medical and Biological Engineering and Computing
IS - 2
ER -