Literature DB >> 27315372

Characterization of biomechanical properties of aged human and ovine mitral valve chordae tendineae.

Keping Zuo1, Thuy Pham2, Kewei Li1, Caitlin Martin2, Zhaoming He3, Wei Sun4.   

Abstract

The mitral valve (MV) is a highly complex cardiac valve consisting of an annulus, anterior and posterior leaflets, chordae tendineae (chords) and two papillary muscles. The chordae tendineae mechanics play a pivotal role in proper MV function: the chords help maintain proper leaflet coaptation and rupture of the chordae tendineae due to disease or aging can lead to mitral valve insufficiency. Therefore, the aim of this study was to characterize the mechanical properties of aged human and ovine mitral chordae tendineae. The human and ovine chordal specimens were categorized by insertion location (i.e., marginal, basal and strut) and leaflet type (i.e., anterior and posterior). The results show that human and ovine chords of differing types vary largely in size but do not have significantly different elastic and failure properties. The excess fibrous tissue layers surrounding the central core of human chords added thickness to the chords but did not contribute to the overall strength of the chords. In general, the thinner marginal chords were stiffer than the thicker basal and strut chords, and the anterior chords were stiffer and weaker than the posterior chords. The human chords of all types were significantly stiffer than the corresponding ovine chords and exhibited much lower failure strains. These findings can be explained by the diminished crimp pattern of collagen fibers of the human mitral chords observed histologically. Moreover, the mechanical testing data was modeled with the nonlinear hyperelastic Ogden strain energy function to facilitate accurate computational modeling of the human MV.
Copyright © 2016 Elsevier Ltd. All rights reserved.

Entities:  

Keywords:  Chordae tendineae; Constitutive modeling; Mechanical properties; Mitral valve; Uniaxial test

Mesh:

Year:  2016        PMID: 27315372      PMCID: PMC5058331          DOI: 10.1016/j.jmbbm.2016.05.034

Source DB:  PubMed          Journal:  J Mech Behav Biomed Mater        ISSN: 1878-0180


  42 in total

1.  Failure mechanics of mitral valve chordae tendineae.

Authors:  Kyra L Sedransk; K Jane Grande-Allen; Ivan Vesely
Journal:  J Heart Valve Dis       Date:  2002-09

2.  Characterization of statically loaded tissue-engineered mitral valve chordae tendineae.

Authors:  Yaling Shi; Ivan Vesely
Journal:  J Biomed Mater Res A       Date:  2004-04-01       Impact factor: 4.396

3.  Finite element modeling of mitral valve dynamic deformation using patient-specific multi-slices computed tomography scans.

Authors:  Qian Wang; Wei Sun
Journal:  Ann Biomed Eng       Date:  2012-07-18       Impact factor: 3.934

4.  Septal-lateral annular cinching ('SLAC) reduces mitral annular size without perturbing normal annular dynamics.

Authors:  Tomasz A Timek; David T Lai; Frederick A Tibayan; George T Daughters; David Liang; Paul Dagum; Neil B Ingels; D Craig Miller
Journal:  J Heart Valve Dis       Date:  2002-01

5.  Stress-strain characteristics of fresh and frozen human aortic and mitral leaflets and chordae tendineae. Implications for clinical use.

Authors:  R E Clark
Journal:  J Thorac Cardiovasc Surg       Date:  1973-08       Impact factor: 5.209

6.  Morphology of the human mitral valve. I. Chordae tendineae: a new classification.

Authors:  J H Lam; N Ranganathan; E D Wigle; M D Silver
Journal:  Circulation       Date:  1970-03       Impact factor: 29.690

7.  A structural basis for the size-related mechanical properties of mitral valve chordae tendineae.

Authors:  Jun Liao; Ivan Vesely
Journal:  J Biomech       Date:  2003-08       Impact factor: 2.712

8.  Floppy mitral valve chordae tendineae: histopathologic alterations.

Authors:  P B Baker; G Bansal; H Boudoulas; A J Kolibash; J Kilman; C F Wooley
Journal:  Hum Pathol       Date:  1988-05       Impact factor: 3.466

9.  Stress-strain behavior of mitral valve leaflets in the beating ovine heart.

Authors:  Gaurav Krishnamurthy; Akinobu Itoh; Wolfgang Bothe; Julia C Swanson; Ellen Kuhl; Matts Karlsson; D Craig Miller; Neil B Ingels
Journal:  J Biomech       Date:  2009-06-16       Impact factor: 2.712

10.  Glycosaminoglycan profiles of myxomatous mitral leaflets and chordae parallel the severity of mechanical alterations.

Authors:  K Jane Grande-Allen; Brian P Griffin; Norman B Ratliff; Delos M Cosgrove; Ivan Vesely
Journal:  J Am Coll Cardiol       Date:  2003-07-16       Impact factor: 24.094

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  13 in total

1.  Regularization-Free Strain Mapping in Three Dimensions, With Application to Cardiac Ultrasound.

Authors:  John J Boyle; Arvin Soepriatna; Frederick Damen; Roger A Rowe; Robert B Pless; Attila Kovacs; Craig J Goergen; Stavros Thomopoulos; Guy M Genin
Journal:  J Biomech Eng       Date:  2019-01-01       Impact factor: 2.097

2.  Finite Element Analysis of Patient-Specific Mitral Valve with Mitral Regurgitation.

Authors:  Thuy Pham; Fanwei Kong; Caitlin Martin; Qian Wang; Charles Primiano; Raymond McKay; John Elefteriades; Wei Sun
Journal:  Cardiovasc Eng Technol       Date:  2017-01-09       Impact factor: 2.495

3.  A discrete fibre dispersion method for excluding fibres under compression in the modelling of fibrous tissues.

Authors:  Kewei Li; Ray W Ogden; Gerhard A Holzapfel
Journal:  J R Soc Interface       Date:  2018-01       Impact factor: 4.118

4.  Suture dehiscence and collagen content in the human mitral and tricuspid annuli.

Authors:  Immanuel David Madukauwa-David; Eric L Pierce; Fatiesa Sulejmani; Joshua Pataky; Wei Sun; Ajit P Yoganathan
Journal:  Biomech Model Mechanobiol       Date:  2018-10-04

5.  A pilot in silico modeling-based study of the pathological effects on the biomechanical function of tricuspid valves.

Authors:  Devin W Laurence; Emily L Johnson; Ming-Chen Hsu; Ryan Baumwart; Arshid Mir; Harold M Burkhart; Gerhard A Holzapfel; Yi Wu; Chung-Hao Lee
Journal:  Int J Numer Method Biomed Eng       Date:  2020-05-08       Impact factor: 2.747

6.  New insights into mitral heart valve prolapse after chordae rupture through fluid-structure interaction computational modeling.

Authors:  Andrés Caballero; Wenbin Mao; Raymond McKay; Charles Primiano; Sabet Hashim; Wei Sun
Journal:  Sci Rep       Date:  2018-11-23       Impact factor: 4.379

7.  Mitral valve repair based on intraoperative objective measurement.

Authors:  Daniel Grinberg; Minh-Quyen Le; Young Joon Kwon; Miguel A Fernandez; David Audigier; Florent Ganet; Jean-Fabien Capsal; Jean François Obadia; Pierre-Jean Cottinet
Journal:  Sci Rep       Date:  2019-03-18       Impact factor: 4.379

Review 8.  Mechanics of the Tricuspid Valve-From Clinical Diagnosis/Treatment, In-Vivo and In-Vitro Investigations, to Patient-Specific Biomechanical Modeling.

Authors:  Chung-Hao Lee; Devin W Laurence; Colton J Ross; Katherine E Kramer; Anju R Babu; Emily L Johnson; Ming-Chen Hsu; Ankush Aggarwal; Arshid Mir; Harold M Burkhart; Rheal A Towner; Ryan Baumwart; Yi Wu
Journal:  Bioengineering (Basel)       Date:  2019-05-22

9.  Mechanics of Porcine Heart Valves' Strut Chordae Tendineae Investigated as a Leaflet-Chordae-Papillary Muscle Entity.

Authors:  Colton J Ross; Devin W Laurence; Ming-Chen Hsu; Ryan Baumwart; Yan D Zhao; Arshid Mir; Harold M Burkhart; Gerhard A Holzapfel; Yi Wu; Chung-Hao Lee
Journal:  Ann Biomed Eng       Date:  2020-01-31       Impact factor: 3.934

Review 10.  Mechanics and Microstructure of the Atrioventricular Heart Valve Chordae Tendineae: A Review.

Authors:  Colton J Ross; Junnan Zheng; Liang Ma; Yi Wu; Chung-Hao Lee
Journal:  Bioengineering (Basel)       Date:  2020-03-12
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