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A Pilot Study on Linking Tissue Mechanics with Load-Dependent Collagen Microstructures in Porcine Tricuspid Valve Leaflets

Authors
Hudson, Luke T.Jett, Samuel, VKramer, Katherine E.Laurence, Devin W.Ross, Colton J.Towner, Rheal A.Baumwart, RyanLim, Ki MooMir, ArshidBurkhart, Harold M.Wu, YiLee, Chung-Hao
Issue Date
Jun-2020
Publisher
MDPI
Keywords
tricuspid regurgitation; biaxial mechanical testing; polarized spatial frequency domain imaging; spatial alignment; collagen fiber reorientation; material anisotropy
Citation
BIOENGINEERING-BASEL, v.7, no.2
Journal Title
BIOENGINEERING-BASEL
Volume
7
Number
2
URI
https://scholarworks.bwise.kr/kumoh/handle/2020.sw.kumoh/25935
DOI
10.3390/bioengineering7020060
ISSN
2306-5354
2306-5354
Abstract
The tricuspid valve (TV) is composed of three leaflets that coapt during systole to prevent deoxygenated blood from re-entering the right atrium. The connection between the TV leaflets' microstructure and the tissue-level mechanical responses has yet to be fully understood in the TV biomechanics society. This pilot study sought to examine the load-dependent collagen fiber architecture of the three TV leaflets, by employing a multiscale, combined experimental approach that utilizes tissue-level biaxial mechanical characterizations, micro-level collagen fiber quantification, and histological analysis. Our results showed that the three TV leaflets displayed greater extensibility in the tissues' radial direction than in the circumferential direction, consistently under different applied biaxial tensions. Additionally, collagen fibers reoriented towards the direction of the larger applied load, with the largest changes in the alignment of the collagen fibers under radially-dominant loading. Moreover, collagen fibers in the belly region of the TV leaflets were found to experience greater reorientations compared to the tissue region closer to the TV annulus. Furthermore, histological examinations of the TV leaflets displayed significant regional variation in constituent mass fraction, highlighting the heterogeneous collagen microstructure. The combined experimental approach presented in this work enables the connection of tissue mechanics, collagen fiber microstructure, and morphology for the TV leaflets. This experimental methodology also provides a new research platform for future developments, such as multiscale models for the TVs, and the design of bioprosthetic heart valves that could better mimic the mechanical, microstructural, and morphological characteristics of the native tricuspid valve leaflets.
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