4.5 Article

Quantification of load-dependent changes in the collagen fiber architecture for the strut chordae tendineae-leaflet insertion of porcine atrioventricular heart valves

期刊

BIOMECHANICS AND MODELING IN MECHANOBIOLOGY
卷 20, 期 1, 页码 223-241

出版社

SPRINGER HEIDELBERG
DOI: 10.1007/s10237-020-01379-4

关键词

Uniaxial mechanical testing; Mitral valve; Tricuspid valve; Constitutive modeling; Polarized spatial frequency domain imaging; Collagen fibers

资金

  1. American Heart Association Scientist Development Grant (SDG) Award [16SDG27760143]
  2. Presbyterian Health Foundation Team Science Grants [C5122401]
  3. School of Aerospace and Mechanical Engineering (AME)
  4. IBEST-OUHSC Funding for Interdisciplinary Research
  5. Faculty Investment Program from the Research Council at the University of Oklahoma (OU)

向作者/读者索取更多资源

This study quantifies the changes in collagen fiber architecture of the mitral and tricuspid valve's strut CT-leaflet insertions in response to applied loads, using a unique approach combining polarized spatial frequency domain imaging with uniaxial mechanical testing. The results show increased collagen fiber alignments with increased loading, providing insight into the relationship between tissue mechanics and microstructure. Additionally, a leaflet-CT-papillary muscle entity method was used to quantify chordae tendineae mechanics, deriving Ogden-type constitutive modeling parameters.
Atrioventricular heart valves (AHVs) regulate the unidirectional flow of blood through the heart by opening and closing of the leaflets, which are supported in their functions by the chordae tendineae (CT). The leaflets and CT are primarily composed of collagen fibers that act as the load-bearing component of the tissue microstructures. At the CT-leaflet insertion, the collagen fiber architecture is complex, and has been of increasing focus in the previous literature. However, these previous studies have not been able to quantify the load-dependent changes in the tissue's collagen fiber orientations and alignments. In the present study, we address this gap in knowledge by quantifying the changes in the collagen fiber architecture of the mitral and tricuspid valve's strut CT-leaflet insertions in response to the applied loads by using a unique approach, which combines polarized spatial frequency domain imaging with uniaxial mechanical testing. Additionally, we characterized these microstructural changes across thesame specimenwithout the need for tissue fixatives. We observed increases in the collagen fiber alignments in the CT-leaflet insertion with increased loading, as described through the degree of optical anisotropy. Furthermore, we used a leaflet-CT-papillary muscle entity method during uniaxial testing to quantify the chordae tendineae mechanics, including the derivation of the Ogden-type constitutive modeling parameters. The results from this study provide a valuable insight into the load-dependent behaviors of the strut CT-leaflet insertion, offering a research avenue to better understand the relationship between tissue mechanics and the microstructure, which will contribute to a deeper understanding of AHV biomechanics.

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