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3D morphometric analysis of calcified cartilage properties using micro-computed tomography.
Kauppinen, S; Karhula, S S; Thevenot, J; Ylitalo, T; Rieppo, L; Kestilä, I; Haapea, M; Hadjab, I; Finnilä, M A; Quenneville, E; Garon, M; Gahunia, H K; Pritzker, K P H; Buschmann, M D; Saarakkala, S; Nieminen, H J.
Afiliação
  • Kauppinen S; Research Unit of Medical Imaging, Physics and Technology, University of Oulu, Oulu, Finland. Electronic address: sami.kauppinen@oulu.fi.
  • Karhula SS; Research Unit of Medical Imaging, Physics and Technology, University of Oulu, Oulu, Finland; Infotech, University of Oulu, Finland. Electronic address: sakari.karhula@oulu.fi.
  • Thevenot J; Research Unit of Medical Imaging, Physics and Technology, University of Oulu, Oulu, Finland; Infotech, University of Oulu, Finland. Electronic address: jerome.thevenot@oulu.fi.
  • Ylitalo T; Department of Physics, University of Helsinki, Helsinki, Finland. Electronic address: tuomo.ylitalo@helsinki.fi.
  • Rieppo L; Research Unit of Medical Imaging, Physics and Technology, University of Oulu, Oulu, Finland. Electronic address: lassi.rieppo@oulu.fi.
  • Kestilä I; Research Unit of Medical Imaging, Physics and Technology, University of Oulu, Oulu, Finland. Electronic address: iida.kestila@oulu.fi.
  • Haapea M; Research Unit of Medical Imaging, Physics and Technology, University of Oulu, Oulu, Finland; Department of Diagnostic Radiology, Oulu University Hospital, Oulu, Finland. Electronic address: marianne.haapea@oulu.fi.
  • Hadjab I; Polytechnique Montreal, Montreal, Quebec, Canada; Biomomentum Inc., 970 Michelin St., Suite 200, Laval, Quebec H7L 5C1, Canada. Electronic address: insaf.hadjab@polymtl.ca.
  • Finnilä MA; Research Unit of Medical Imaging, Physics and Technology, University of Oulu, Oulu, Finland; Department of Applied Physics, University of Eastern Finland, Kuopio, Finland. Electronic address: mikko.finnila@oulu.fi.
  • Quenneville E; Biomomentum Inc., 970 Michelin St., Suite 200, Laval, Quebec H7L 5C1, Canada. Electronic address: quenneville@biomomentum.com.
  • Garon M; Biomomentum Inc., 970 Michelin St., Suite 200, Laval, Quebec H7L 5C1, Canada. Electronic address: garon@biomomentum.com.
  • Gahunia HK; Department of Laboratory Medicine and Pathobiology, University of Toronto, Toronto, ON, Canada. Electronic address: pvgahunia@hotmail.com.
  • Pritzker KPH; Department of Laboratory Medicine and Pathobiology, University of Toronto, Toronto, ON, Canada; Department of Laboratory Medicine and Pathobiology, Mount Sinai Hospital, Toronto, ON, Canada. Electronic address: kenpritzker@gmail.com.
  • Buschmann MD; Polytechnique Montreal, Montreal, Quebec, Canada. Electronic address: michael.buschmann@polymtl.ca.
  • Saarakkala S; Research Unit of Medical Imaging, Physics and Technology, University of Oulu, Oulu, Finland; Department of Diagnostic Radiology, Oulu University Hospital, Oulu, Finland. Electronic address: simo.saarakkala@oulu.fi.
  • Nieminen HJ; Research Unit of Medical Imaging, Physics and Technology, University of Oulu, Oulu, Finland; Department of Physics, University of Helsinki, Helsinki, Finland; Department of Laboratory Medicine and Pathobiology, University of Toronto, Toronto, ON, Canada; Department of Neuroscience and Biomedical Eng
Osteoarthritis Cartilage ; 27(1): 172-180, 2019 01.
Article em En | MEDLINE | ID: mdl-30287395
OBJECTIVE: Our aim is to establish methods for quantifying morphometric properties of calcified cartilage (CC) from micro-computed tomography (µCT). Furthermore, we evaluated the feasibility of these methods in investigating relationships between osteoarthritis (OA), tidemark surface morphology and open subchondral channels (OSCCs). METHOD: Samples (n = 15) used in this study were harvested from human lateral tibial plateau (n = 8). Conventional roughness and parameters assessing local 3-dimensional (3D) surface variations were used to quantify the surface morphology of the CC. Subchondral channel properties (percentage, density, size) were also calculated. As a reference, histological sections were evaluated using Histopathological osteoarthritis grading (OARSI) and thickness of CC and subchondral bone (SCB) was quantified. RESULTS: OARSI grade correlated with a decrease in local 3D variations of the tidemark surface (amount of different surface patterns (rs = -0.600, P = 0.018), entropy of patterns (EP) (rs = -0.648, P = 0.018), homogeneity index (HI) (rs = 0.555, P = 0.032)) and tidemark roughness (TMR) (rs = -0.579, P = 0.024). Amount of different patterns (ADP) and EP associated with channel area fraction (CAF) (rp = 0.876, P < 0.0001; rp = 0.665, P = 0.007, respectively) and channel density (CD) (rp = 0.680, P = 0.011; rp = 0.582, P = 0.023, respectively). TMR was associated with CAF (rp = 0.926, P < 0.0001) and average channel size (rp = 0.574, P = 0.025). CC topography differed statistically significantly in early OA vs healthy samples. CONCLUSION: We introduced a µ-CT image method to quantify 3D CC topography and perforations through CC. CC topography was associated with OARSI grade and OSCC properties; this suggests that the established methods can detect topographical changes in tidemark and CC perforations associated with OA.
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Texto completo: 1 Base de dados: MEDLINE Assunto principal: Calcinose / Cartilagem Articular / Osteoartrite do Joelho Tipo de estudo: Etiology_studies Limite: Aged / Humans / Middle aged Idioma: En Ano de publicação: 2019 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Assunto principal: Calcinose / Cartilagem Articular / Osteoartrite do Joelho Tipo de estudo: Etiology_studies Limite: Aged / Humans / Middle aged Idioma: En Ano de publicação: 2019 Tipo de documento: Article