Literature DB >> 15044391

Glycosaminoglycans and proteoglycans in normal mitral valve leaflets and chordae: association with regions of tensile and compressive loading.

K Jane Grande-Allen1, Anthony Calabro, Vishal Gupta, Thomas N Wight, Vincent C Hascall, Ivan Vesely.   

Abstract

This study was designed to identify the specific proteoglycans and glycosaminoglycans (GAGs) in the leaflets and chordae of the mitral valve and to interpret their presence in relation to the tensile and compressive loads borne by these tissues. Leaflets and chordae from normal human mitral valves (n = 31, obtained at autopsy) were weighed and selected portions digested using proteinase K, hyaluronidase, and chondroitinases. After fluorescent derivatization, fluorophore-assisted carbohydrate electrophoresis was used to separate and quantify the derivatized saccharides specific for each GAG type. In addition, the lengths of the chondroitin/dermatan sulfate chains were determined. Proteoglycans were identified by western blotting. The regions of the valve that experience tension, such as the chordae and the central portion of the anterior leaflet, contained less water, less hyaluronan, and mainly iduronate and 4-sulfated N-acetylgalactosamine with chain lengths of 50-70 disaccharides. These GAGs are likely associated with the small proteoglycans decorin and biglycan, which were found in abundance in the tensile regions. The valve regions that experience compression, such as the posterior leaflet and the free edge of the anterior leaflet, contained significantly more water, hyaluronan, and glucuronate and 6-sulfated N-acetylgalactosamine with chain lengths of 80-90 disaccharides. These GAGs are likely components of water-binding versican aggregates, which were abundant in the compressive loading regions. The relative amounts and distributions of these GAGs are therefore consistent with the tensile and compressive loads that these tissues bear. Finally, the concentrations of total GAGs and many different chondroitin/dermatan sulfate subclasses were significantly decreased with advancing age.

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Year:  2004        PMID: 15044391     DOI: 10.1093/glycob/cwh076

Source DB:  PubMed          Journal:  Glycobiology        ISSN: 0959-6658            Impact factor:   4.313


  41 in total

1.  Human degenerative valve disease is associated with up-regulation of low-density lipoprotein receptor-related protein 5 receptor-mediated bone formation.

Authors:  Frank C Caira; Stuart R Stock; Thomas G Gleason; Edwin C McGee; Jie Huang; Robert O Bonow; Thomas C Spelsberg; Patrick M McCarthy; Shahbudin H Rahimtoola; Nalini M Rajamannan
Journal:  J Am Coll Cardiol       Date:  2006-03-20       Impact factor: 24.094

Review 2.  Mitral valve disease--morphology and mechanisms.

Authors:  Robert A Levine; Albert A Hagége; Daniel P Judge; Muralidhar Padala; Jacob P Dal-Bianco; Elena Aikawa; Jonathan Beaudoin; Joyce Bischoff; Nabila Bouatia-Naji; Patrick Bruneval; Jonathan T Butcher; Alain Carpentier; Miguel Chaput; Adrian H Chester; Catherine Clusel; Francesca N Delling; Harry C Dietz; Christian Dina; Ronen Durst; Leticia Fernandez-Friera; Mark D Handschumacher; Morten O Jensen; Xavier P Jeunemaitre; Hervé Le Marec; Thierry Le Tourneau; Roger R Markwald; Jean Mérot; Emmanuel Messas; David P Milan; Tui Neri; Russell A Norris; David Peal; Maelle Perrocheau; Vincent Probst; Michael Pucéat; Nadia Rosenthal; Jorge Solis; Jean-Jacques Schott; Ehud Schwammenthal; Susan A Slaugenhaupt; Jae-Kwan Song; Magdi H Yacoub
Journal:  Nat Rev Cardiol       Date:  2015-10-20       Impact factor: 32.419

3.  A detailed mechanical and microstructural analysis of ovine tricuspid valve leaflets.

Authors:  William D Meador; Mrudang Mathur; Gabriella P Sugerman; Tomasz Jazwiec; Marcin Malinowski; Matthew R Bersi; Tomasz A Timek; Manuel K Rausch
Journal:  Acta Biomater       Date:  2019-11-22       Impact factor: 8.947

4.  Differential proteoglycan and hyaluronan distribution in calcified aortic valves.

Authors:  Elizabeth H Stephens; Jerome G Saltarrelli; L Scott Baggett; Indrajit Nandi; Joyce J Kuo; Alan R Davis; Elizabeth A Olmsted-Davis; Michael J Reardon; Joel D Morrisett; Kathryn Jane Grande-Allen
Journal:  Cardiovasc Pathol       Date:  2010-12-24       Impact factor: 2.185

5.  Material properties of the ovine mitral valve anterior leaflet in vivo from inverse finite element analysis.

Authors:  Gaurav Krishnamurthy; Daniel B Ennis; Akinobu Itoh; Wolfgang Bothe; Julia C Swanson; Matts Karlsson; Ellen Kuhl; D Craig Miller; Neil B Ingels
Journal:  Am J Physiol Heart Circ Physiol       Date:  2008-07-11       Impact factor: 4.733

Review 6.  The Endocardium and Heart Valves.

Authors:  Bailey Dye; Joy Lincoln
Journal:  Cold Spring Harb Perspect Biol       Date:  2020-12-01       Impact factor: 10.005

7.  Age-related changes in material behavior of porcine mitral and aortic valves and correlation to matrix composition.

Authors:  Elizabeth H Stephens; Nicky de Jonge; Meaghan P McNeill; Christopher A Durst; K Jane Grande-Allen
Journal:  Tissue Eng Part A       Date:  2010-03       Impact factor: 3.845

8.  Development and Characterization of a Porcine Mitral Valve Scaffold for Tissue Engineering.

Authors:  M Granados; L Morticelli; S Andriopoulou; P Kalozoumis; M Pflaum; P Iablonskii; B Glasmacher; M Harder; J Hegermann; C Wrede; I Tudorache; S Cebotari; A Hilfiker; A Haverich; Sotirios Korossis
Journal:  J Cardiovasc Transl Res       Date:  2017-05-01       Impact factor: 4.132

9.  On the biomechanical role of glycosaminoglycans in the aortic heart valve leaflet.

Authors:  Chad E Eckert; Rong Fan; Brandon Mikulis; Mathew Barron; Christopher A Carruthers; Vincent M Friebe; Naren R Vyavahare; Michael S Sacks
Journal:  Acta Biomater       Date:  2012-10-02       Impact factor: 8.947

Review 10.  Myxomatous mitral valve disease bench to bedside: LDL-density-pressure regulates Lrp5.

Authors:  Nalini M Rajamannan
Journal:  Expert Rev Cardiovasc Ther       Date:  2014-03
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