Biaxial Mechanical Response of Bioprosthetic Heart Valve Biomaterials to High In-plane Shear

Author:

Sun Wei1,Sacks Michael S.1,Sellaro Tiffany L.1,Slaughter William S.2,Scott Michael J.3

Affiliation:

1. Engineered Tissue Mechanics Laboratory, Department of Bioengineering

2. Department of Mechanical Engineering, University of Pittsburgh, Pittsburgh, PA

3. Edwards Lifesciences, Irvine, CA

Abstract

Utilization of novel biologically-derived biomaterials in bioprosthetic heart valves (BHV) requires robust constitutive models to predict the mechanical behavior under generalized loading states. Thus, it is necessary to perform rigorous experimentation involving all functional deformations to obtain both the form and material constants of a strain-energy density function. In this study, we generated a comprehensive experimental biaxial mechanical dataset that included high in-plane shear stresses using glutaraldehyde treated bovine pericardium (GLBP) as the representative BHV biomaterial. Compared to our previous study (Sacks, JBME, v.121, pp. 551–555, 1999), GLBP demonstrated a substantially different response under high shear strains. This finding was underscored by the inability of the standard Fung model, applied successfully in our previous GLBP study, to fit the high-shear data. To develop an appropriate constitutive model, we utilized an interpolation technique for the pseudo-elastic response to guide modification of the final model form. An eight parameter modified Fung model utilizing additional quartic terms was developed, which fitted the complete dataset well. Model parameters were also constrained to satisfy physical plausibility of the strain energy function. The results of this study underscore the limited predictive ability of current soft tissue models, and the need to collect experimental data for soft tissue simulations over the complete functional range.

Publisher

ASME International

Subject

Physiology (medical),Biomedical Engineering

Reference39 articles.

1. Aupart, M., Babuty, D., Guesnier, L., Meurisse, Y., Sirinelli, A., and Marchand, M., 1996, “Double Valve Replacement With the Carpentier-Edwards Pericardial Valve: 10 Year Results,” J. Heart Valve Dis., 5, pp. 312–316.

2. Cosgrove, D. , 1996, “Carpentier Pericardial Valve,” Semin Thorac. Cardiovasc. Surg., 8(3), pp. 269–275.

3. Frater, R., Furlong, P., Cosgrove, D., Okies, J., Colburn, L., Katz, A., Lowe, N., and Ryba, E., 1998, “Long-term Durability and Patient Functional Status of the Carpentier-Edwards Perimount Pericardial Bioprosthesis in the Aortic Position,” J. Heart Valve Dis., 7, pp. 48–53.

4. Grunkemeier, G., and Bodnar, E., 1995, “Comparative Assessment of Bioprosthesis Durability in the Aortic Position,” J. Heart Valve Dis., 4, pp. 49–55.

5. Pelletier, L., Carrier, M., Leclerc, Y., and Dyrda, I., 1995, “The Carpentier-Edwards Pericardial Bioprosthesis: Clinical Experience with 600 Patients,” Ann. Thorac. Surg., 60, pp. 297–302.

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