PEER-REVIEWED PUBLICATION

2023

Ascending aortic geometry and its relationship to the biomechanical properties of aortic tissue

A tensile test divider icon

Eliathamby D, Keshishi M, et al.

JTCVS Open

University Health Network, University of Toronto, Ted Rogers Center for Heart Research

RESEARCH SUMMARY
This study examined the relationship between ascending aortic geometry (diameter and length) and the intrinsic biomechanical properties of aneurysmal aortic tissue. Sixty-eight patients undergoing elective ascending aortic aneurysm repair were analyzed. Preoperative CT scans provided length and diameter measurements, while excised tissues underwent biaxial tensile testing and delamination testing. Stress–strain data were used to calculate energy loss, modulus of elasticity, and delamination strength. Results showed that only energy loss weakly correlated with aortic diameter, while no significant relationship existed between diameter or length and stiffness or delamination strength. The findings indicate that aortic geometry alone does not reliably reflect the material properties or dissection risk of aneurysmal aortic tissue, emphasizing the need for new biomechanical risk markers.
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CELLSCALE INSTRUMENT USED

BioTester

Biaxial tensile and delamination tests were performed using a CellScale BioTester 5000 (Waterloo, ON, Canada) with tungsten rakes and a temperature-controlled bath (37 °C Ringer’s solution). Samples were stretched to 25 % equibiaxial strain following 10 preconditioning cycles, generating stress–strain curves to derive energy loss and modulus of elasticity. Rectangular tissue strips were then mounted for controlled-rate delamination testing to measure interlaminar strength. The BioTester’s dual-actuator system and imaging ensured precise mechanical data acquisition critical to correlating geometry with material response.
AUTHORS

Daniella Eliathamby; Melanie Keshishi; Maral Ouzounian; Thomas L. Forbes; Kongteng Tan; Craig A. Simmons; Jennifer Chung.

PUBLICATION DETAILS
JOURNAL

JTCVS Open

YEAR

2023

INSTITUTIONS

University Health Network, University of Toronto, Ted Rogers Center for Heart Research

COUNTRIES

Canada

INSTRUMENT USED

BioTester

TESTING METHODS

Biaxial TestingHydrated and Temperature Controlled TestingPeel Testing

RESEARCH APPLICATIONS

Fibrosis & Tissue RemodelingMechanotransductionVascular Tissue Engineering & Mechanics

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