Effect of mechanical fatigue on commercial bioprosthetic TAVR valve mechanical and microstructural properties

Christopher Noble, Alexander Hooke, Arush Rajotia, David Morse, Dan Dragomir-Daescu, Jeffery Salisbury, Melissa D. Young, Amir Lerman

Research output: Contribution to journalArticlepeer-review

Abstract

Valvular structural deterioration is of particular concern for transcatheter aortic valve replacements due to their suspected shorter longevity and increasing use in younger patient populations. In this work we investigated the mechanical and microstructural changes in commercial TAVR valves composed of both glutaraldehyde fixed bovine and porcine pericardium (GLBP and GLPP) following accelerated wear testing (AWT) as outlined in ISO 5840 standards. This provided greater physiological relevance to the loading compared to previous studies and by utilizing digital image correlation we were able to obtain strain contours for each leaflet pre and post fatigue and identify sites of fatigue damage. The areas of greatest change in mechanical strain for each leaflet were then further probed using biaxial tensile testing, confocal microscopy, and electron microscopy. It was observed that overall strain decreased in the GLPP valves following AWT of 200 million cycles while the GLBP valve showed an increase in overall strain. Biaxial tensile testing showed a statistically significant reduction in stress for GLPP while no significant changes were seen for GLBP. Both confocal and electron microscopy showed a disruption to the gross collagen organization and fibrillar structure, including fragmentation, for GLPP but only the former for GLBP. However, further test data is required to confirm these findings and to provide a better understanding of this fatigue pathway is required such that it can be incorporated into both valve design and selection processes to improve overall longevity for both GLPP and GLBP devices.

Original languageEnglish (US)
Article number106441
JournalJournal of the Mechanical Behavior of Biomedical Materials
Volume154
DOIs
StatePublished - Jun 2024

Keywords

  • Biaxial tensile testing
  • Digital image correlation
  • Fatigue
  • Microstructure
  • TAVR valve

ASJC Scopus subject areas

  • Biomaterials
  • Biomedical Engineering
  • Mechanics of Materials

Cite this