» Articles » PMID: 15450533

Site- and Exercise-related Variation in Structure and Function of Cartilage from Equine Distal Metacarpal Condyle

Overview
Date 2004 Sep 29
PMID 15450533
Citations 6
Authors
Affiliations
Soon will be listed here.
Abstract

Objective: Determine (1) the site-associated response of articular cartilage of the equine distal metacarpal condyle to training at a young age as assessed by changes in indentation stiffness and alterations in cartilage structure and composition, and (2) relationships between indentation stiffness and indices of cartilage structure and composition.

Method: Experimental animals (n=6) were trained on a track (increasing exercise to 1km/day by 5 months); controls (n=6) were pasture-reared. Animals were euthanized at 18 months and four osteochondral samples were harvested per metacarpal condyle from dorsal-medial, dorsal-lateral, palmar-medial, and palmar-lateral aspects. Cartilage was analyzed for India ink staining (quantified as reflectance score (RS)), short-term indentation stiffness (sphere-ended, 0.4mm diameter), thickness, and biochemical composition.

Results: Cartilage structural, biochemical and biomechanical properties varied markedly with site in the joint. Sites just medial and just lateral to the sagittal ridge showed signs of early degeneration, with relatively low RS, indentation stiffness, and collagen content, and relatively high water content. Effects of exercise and side (left vs right) were not detected for any measure. Overall, indentation stiffness correlated positively with RS and collagen content, and inversely with thickness and water content.

Conclusion: Gentle exercise-imposed mechanical stimulation did not markedly affect articular cartilage function or structure. However, the marked site-associated variation suggests that biomechanical environment can initiate degenerative changes in immature cartilage during joint growth and maturation.

Citing Articles

Non-Destructive Spectroscopic Assessment of High and Low Weight Bearing Articular Cartilage Correlates with Mechanical Properties.

Karchner J, Yousefi F, Bitman S, Darvish K, Pleshko N Cartilage. 2018; 10(4):480-490.

PMID: 29690771 PMC: 6755878. DOI: 10.1177/1947603518764269.


Morphological and Microstructural Alterations of the Articular Cartilage and Bones during Treadmill Exercises with Different Additional Weight-Bearing Levels.

Gao J, Fang J, Gong H, Gao B J Healthc Eng. 2017; 2017:8696921.

PMID: 29065659 PMC: 5525086. DOI: 10.1155/2017/8696921.


Effect of treadmill exercise timing on repair of full-thickness defects of articular cartilage by bone-derived mesenchymal stem cells: an experimental investigation in rats.

Song J, Dong F, Li X, Xu C, Cui Z, Jiang N PLoS One. 2014; 9(3):e90858.

PMID: 24595327 PMC: 3940955. DOI: 10.1371/journal.pone.0090858.


Can osteochondral grafting be augmented with microfracture in an extended-size lesion of articular cartilage?.

Lane J, Healey R, Chen A, Sah R, Amiel D Am J Sports Med. 2010; 38(7):1316-23.

PMID: 20400750 PMC: 4111625. DOI: 10.1177/0363546510363433.


The proteoglycan metabolism of articular cartilage in joint-scale culture.

McCarty W, Pallante A, Rone R, Bugbee W, Sah R Tissue Eng Part A. 2009; 16(5):1717-27.

PMID: 20038199 PMC: 2952130. DOI: 10.1089/ten.TEA.2009.0663.