scholarly journals Three-dimensional distribution of articular cartilage thickness in the elderly talus and calcaneus analysing the relationship between subchondral bone plate density and the overlying cartilage thickness

2012 ◽  
Vol 20 ◽  
pp. S229
Author(s):  
K. Akiyama ◽  
T. Sakai ◽  
N. Sugimoto ◽  
H. Yoshikawa ◽  
K. Sugamoto
2006 ◽  
Vol 19 (03) ◽  
pp. 142-146 ◽  
Author(s):  
D. D. Frisbie ◽  
M. W. Cross ◽  
C. W. McIlwraith

SummaryHistological measurements of the thickness of non-calcified and calcified cartilage, as well as the subchondral bone plate in five locations on the femoral trochlea and medial femoral condyles of species were used in preclinical studies of articular cartilage and compared to those of the human knee. Cadaver specimens were obtained of six human knees, as well as six equine, six goat, six dog, six sheep and six rabbit stifle joints (the animal equivalent of the human knee). Specimens were taken from the lateral trochlear ridge, medial trochlear ridge and medial femoral condyle. After histopathological processing, the thickness of non-calcified and calcified cartilage layers, as well as the subchondral bone plate, was measured. Average articular cartilage thickness over five locations were 2.2–2.5 mm for human, 0.3 mm for rabbit, 0.4–0.5 mm for sheep, 0.6–1.3 mm for dog, 0.7–1.5 mm for goat and 1.5–2 mm for horse. The horse provides the closest approximation to humans in terms of articular cartilage thickness, and this approximation is considered relevant in pre-clinical studies of cartilage healing.


2011 ◽  
Vol 39 (3) ◽  
pp. 624-631 ◽  
Author(s):  
Joerg Mika ◽  
Thomas O. Clanton ◽  
David Pretzel ◽  
Gerlind Schneider ◽  
Catherine G. Ambrose ◽  
...  

Author(s):  
F H Dar ◽  
R M Aspden

The stiffness of articular cartilage increases dramatically with increasing rate of loading, and it has been hypothesized that increasing the stiffness of the subchondral bone may result in damaging stresses being generated in the articular cartilage. Despite the interdependence of these tissues in a joint, little is understood of the effect of such changes in one tissue on stresses generated in another. To investigate this, a parametric finite element model of an idealized joint was developed. The model incorporated layers representing articular cartilage, calcified cartilage, the subchondral bone plate and cancellous bone. Taguchi factorial design techniques, employing a two-level full-factorial and a four-level fractional factorial design, were used to vary the material properties and thicknesses of the layers over the wide range of values found in the literature. The effects on the maximum values of von Mises stress in each of the tissues are reported here. The stiffness of the cartilage was the main factor that determined the stress in the articular cartilage. This, and the thickness of the cartilage, also had the largest effect on the stresses in all the other tissues with the exception of the subchondral bone plate, in which stresses were dominated by its own stiffness. The stiffness of the underlying subchondral bone had no effect on the stresses generated in the cartilage. This study shows how stresses in the various tissues are affected by changes in their mechanical properties and thicknesses. It also demonstrates the benefits of a structured, systematic approach to investigating parameter variation in finite element models.


2008 ◽  
Vol 58 (12) ◽  
pp. 3831-3842 ◽  
Author(s):  
Jennifer Hwang ◽  
Won C. Bae ◽  
Wendy Shieu ◽  
Chad W. Lewis ◽  
William D. Bugbee ◽  
...  

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