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J Appl Physiol 102: 2194-2200, 2007. First published March 1, 2007; doi:10.1152/japplphysiol.00709.2006
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How does exercise intensity and type affect equine distal tarsal subchondral bone thickness?

R. C. Murray,1 M. V. Branch,1 S. J. Dyson,1 T. D. H. Parkin,1 and A. E. Goodship2

1Animal Health Trust, Lanwades Park, Kentford, Newmarket, Suffolk; and 2The Royal Veterinary College and Institute of Orthopaedics and Musculoskeletal Science, University College London, North Mymms, Hatfield, Herts, United Kingdom

Submitted 23 June 2006 ; accepted in final form 14 February 2007

Adaptation of osteochondral tissues is based on the strains experienced during exercise at each location within the joint. Different exercise intensities and types may induce particular site-specific strains, influencing osteochondral adaptation and potentially predisposing to injury. Our hypotheses were that patterns of equine distal tarsal subchondral bone (SCB) thickness relate to the type and intensity of exercise, and that high-intensity exercise leads to site-specific increases in thickness. SCB thickness was measured at defined dorsal and plantar locations on magnetic resonance images of cadaver tarsi collected from horses with a history of low [general purpose (n = 20) and horse walker (n = 6)] or high [elite competition (n = 12), race training (n = 15), and treadmill training (n = 4)] exercise intensity. SCB thickness was compared between sites within each exercise group and between exercise groups. SCB thickness in elite competition and race training, but not treadmill training, was greater than low-intensity exercise. For general purpose horses, lateral SCB thickness was greater than medial throughout. Horse walker exercise led to relatively thicker lateral and medial SCB compared with the midline. Elite competition was associated with increased SCB thickness of the proximal small tarsal bones medially and the distal bones laterally. For race training and treadmill training, there were minimal differences between sites overall, although the lateral aspect was greater than medial, and medial greater than midline at a few sites for race training. In conclusion, different types of high-intensity exercise were associated with different patterns of SCB thickness across the joints from medial to lateral and proximal to distal, indicating that both exercise intensity and type of exercise affect the SCB response at any particular site within the equine distal tarsal joints.

magnetic resonance imaging; osteochondral adaptation



Address for reprint requests and other correspondence: R. C. Murray, Animal Health Trust, Lanwades Park, Kentford, Newmarket, Suffolk CB8 7UU, United Kingdom (e-mail: rachel.murray{at}aht.org.uk)







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