Literature DB >> 9641633

The aortic valve microstructure: effects of transvalvular pressure.

M S Sacks1, D B Smith, E D Hiester.   

Abstract

We undertook this study to establish a more quantitative understanding of the microstructural response of the aortic valve cusp to pressure loading. Fresh porcine aortic valves were fixed at transvalvular pressures ranging from 0 mmHg to 90 mmHg, and small-angle light scattering (SALS) was used to quantify the gross fiber structure of the valve cusps. At all pressures the fiber-preferred directions coursed along the circumferential direction. Increasing transvalvular pressure induced the greatest changes in fiber alignment between 0 and 1 mmHg, with no detectable change past 4 mmHg. When the fibrosa and ventricularis layers of the cusps were re-scanned separately, the fibrosa layer revealed a higher degree of orientation while the ventricularis was more randomly oriented. The degree of fiber orientation for both layers became more similar once the transvalvular pressure exceeded 4 mmHg, and the layers were almost indistinguishable by 60 mmHg. It is possible that, in addition to retracting the aortic cusp during systole, the ventricularis mechanically may contribute to the diastolic cuspal stiffness at high transvalvular pressures, which may help to prevent over distention of the cusp. Our results suggest a complex, highly heterogeneous structural response to transvalvular pressure on a fiber level that will have to be duplicated in future bioprosthetic heart valve designs.

Mesh:

Year:  1998        PMID: 9641633     DOI: 10.1002/(sici)1097-4636(199807)41:1<131::aid-jbm16>3.0.co;2-q

Source DB:  PubMed          Journal:  J Biomed Mater Res        ISSN: 0021-9304


  36 in total

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2.  Time-dependent biaxial mechanical behavior of the aortic heart valve leaflet.

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4.  Differences in the region- and depth-dependent microstructural organization in normal versus glaucomatous human posterior sclerae.

Authors:  Forest L Danford; Dongmei Yan; Robert A Dreier; Thomas M Cahir; Christopher A Girkin; Jonathan P Vande Geest
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5.  Polarized light spatial frequency domain imaging for non-destructive quantification of soft tissue fibrous structures.

Authors:  Bin Yang; John Lesicko; Manu Sharma; Michael Hill; Michael S Sacks; James W Tunnell
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Review 6.  Heart Valve Biomechanics and Underlying Mechanobiology.

Authors:  Salma Ayoub; Giovanni Ferrari; Robert C Gorman; Joseph H Gorman; Frederick J Schoen; Michael S Sacks
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7.  Prediction of matrix-to-cell stress transfer in heart valve tissues.

Authors:  Siyao Huang; Hsiao-Ying Shadow Huang
Journal:  J Biol Phys       Date:  2014-10-09       Impact factor: 1.365

Review 8.  Potential drug targets for calcific aortic valve disease.

Authors:  Joshua D Hutcheson; Elena Aikawa; W David Merryman
Journal:  Nat Rev Cardiol       Date:  2014-01-21       Impact factor: 32.419

9.  Impact of tissue preservation on collagen fiber architecture.

Authors:  H N Hutson; C Kujawa; K Eliceiri; P Campagnola; K S Masters
Journal:  Biotech Histochem       Date:  2018-10-24       Impact factor: 1.718

10.  Interlayer micromechanics of the aortic heart valve leaflet.

Authors:  Rachel M Buchanan; Michael S Sacks
Journal:  Biomech Model Mechanobiol       Date:  2013-11-30
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