Literature DB >> 18448399

Valve proteoglycan content and glycosaminoglycan fine structure are unique to microstructure, mechanical load and age: Relevance to an age-specific tissue-engineered heart valve.

Elizabeth H Stephens1, Chia-Kai Chu, K Jane Grande-Allen.   

Abstract

This study characterized valve proteoglycan and glycosaminoglycan composition during development and aging. This knowledge is important for the development of age-specific tissue-engineered heart valves as well as treatments for age-specific valvulopathies. Aortic valves and mitral valves from first-third trimester, 6-week, 6-month and 6-year-old pigs were examined using immunohistochemistry for versican, biglycan, decorin and hyaluronan, as well as elastin and fibrillin. The fine structure of glycosaminoglycans was examined by fluorophore-assisted carbohydrate electrophoresis. Decorin expression was strongest in the 6-year-old valves, particularly in the aortic valve spongiosa. The quantity of iduronate was also highest in the 6-year-old valves. The central tensile-loading region of the anterior mitral leaflet demonstrated reduced glycosaminoglycan content, chain length and hydration and a larger fraction of 4-sulfated iduronate and lower fraction of 6-sulfation. With age, the anterior leaflet center showed a further increase in 4-sulfated iduronate and decrease in 6-sulfation. In contrast, the anterior leaflet free edge showed decreased iduronate and 4-sulfated glucuronate content with age. The young aortic valve was similar to the mitral valve free edge with a higher concentration of glycosaminoglycans and 6-rather than 4-sulfation, but aged to resemble the mitral anterior leaflet center, with an increase in 4-sulfated iduronate content and a decrease in the 6-sulfation fraction. Elastin and fibrillin often co-localized with the proteoglycans studied, but elastin co-localized most specifically with versican. In conclusion, composition and fine structure changes in valve proteoglycans and glycosaminoglycans with age are complex and distinct within valve type, histological layers and regions of different mechanical loading.

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Year:  2008        PMID: 18448399     DOI: 10.1016/j.actbio.2008.03.014

Source DB:  PubMed          Journal:  Acta Biomater        ISSN: 1742-7061            Impact factor:   8.947


  42 in total

1.  Perinatal changes in mitral and aortic valve structure and composition.

Authors:  Elizabeth H Stephens; Allison D Post; Daniel R Laucirica; K Jane Grande-Allen
Journal:  Pediatr Dev Pathol       Date:  2010-06-10

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.  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

4.  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

5.  Age-related changes in aortic valve hemostatic protein regulation.

Authors:  Liezl R Balaoing; Allison D Post; Huiwen Liu; Kyung Taeck Minn; K Jane Grande-Allen
Journal:  Arterioscler Thromb Vasc Biol       Date:  2013-10-31       Impact factor: 8.311

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
Journal:  Compr Physiol       Date:  2016-09-15       Impact factor: 9.090

7.  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

8.  Temporal and spatial expression of collagens during murine atrioventricular heart valve development and maintenance.

Authors:  Jacqueline D Peacock; Yinhui Lu; Manuel Koch; Karl E Kadler; Joy Lincoln
Journal:  Dev Dyn       Date:  2008-10       Impact factor: 3.780

Review 9.  Mechanisms of calcification in aortic valve disease: role of mechanokinetics and mechanodynamics.

Authors:  W David Merryman; Frederick J Schoen
Journal:  Curr Cardiol Rep       Date:  2013-05       Impact factor: 2.931

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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