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In vitro method for 3D morphometry of human articular cartilage chondrons based on micro-computed tomography

OBJECTIVE: The aims of this study were: to 1) develop a novel sample processing protocol to visualize human articular cartilage (AC) chondrons using micro-computed tomography (μCT), 2) develop and validate an algorithm to quantify the chondron morphology in 3D, and 3) compare the differences in chon...

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Autores principales: Kestilä, I., Thevenot, J., Finnilä, M.A., Karhula, S.S., Hadjab, I., Kauppinen, S., Garon, M., Quenneville, E., Haapea, M., Rieppo, L., Pritzker, K.P., Buschmann, M.D., Nieminen, H.J., Saarakkala, S.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: W.B. Saunders For The Osteoarthritis Research Society 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6058088/
https://www.ncbi.nlm.nih.gov/pubmed/29802974
http://dx.doi.org/10.1016/j.joca.2018.05.012
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author Kestilä, I.
Thevenot, J.
Finnilä, M.A.
Karhula, S.S.
Hadjab, I.
Kauppinen, S.
Garon, M.
Quenneville, E.
Haapea, M.
Rieppo, L.
Pritzker, K.P.
Buschmann, M.D.
Nieminen, H.J.
Saarakkala, S.
author_facet Kestilä, I.
Thevenot, J.
Finnilä, M.A.
Karhula, S.S.
Hadjab, I.
Kauppinen, S.
Garon, M.
Quenneville, E.
Haapea, M.
Rieppo, L.
Pritzker, K.P.
Buschmann, M.D.
Nieminen, H.J.
Saarakkala, S.
author_sort Kestilä, I.
collection PubMed
description OBJECTIVE: The aims of this study were: to 1) develop a novel sample processing protocol to visualize human articular cartilage (AC) chondrons using micro-computed tomography (μCT), 2) develop and validate an algorithm to quantify the chondron morphology in 3D, and 3) compare the differences in chondron morphology between intact and osteoarthritic AC. METHOD: The developed protocol is based on the dehydration of samples with hexamethyldisilazane (HMDS), followed by imaging with a desktop μCT. Chondron density and depth, as well as volume and sphericity, were calculated in 3D with a custom-made and validated algorithm employing semi-automatic chondron selection and segmentation. The quantitative parameters were analyzed at three AC depth zones (zone 1: 0–10%; zone 2: 10–40%; zone 3: 40–100%) and grouped by the OARSI histological grades (OARSI grades 0–1.0, n = 6; OARSI grades 3.0–3.5, n = 6). RESULTS: After semi-automatic chondron selection and segmentation, 1510 chondrons were approved for 3D morphometric analyses. The chondrons especially in the deeper tissue (zones 2 and 3) were significantly larger (P < 0.001) and less spherical (P < 0.001), respectively, in the OARSI grade 3–3.5 group compared to the OARSI grade 0–1.0 group. No statistically significant difference in chondron density between the OARSI grade groups was observed at different depths. CONCLUSION: We have developed a novel sample processing protocol for chondron imaging in 3D, as well as a high-throughput algorithm to semi-automatically quantify chondron/chondrocyte 3D morphology in AC. Our results also suggest that 3D chondron morphology is affected by the progression of osteoarthritis (OA).
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spelling pubmed-60580882018-08-01 In vitro method for 3D morphometry of human articular cartilage chondrons based on micro-computed tomography Kestilä, I. Thevenot, J. Finnilä, M.A. Karhula, S.S. Hadjab, I. Kauppinen, S. Garon, M. Quenneville, E. Haapea, M. Rieppo, L. Pritzker, K.P. Buschmann, M.D. Nieminen, H.J. Saarakkala, S. Osteoarthritis Cartilage Article OBJECTIVE: The aims of this study were: to 1) develop a novel sample processing protocol to visualize human articular cartilage (AC) chondrons using micro-computed tomography (μCT), 2) develop and validate an algorithm to quantify the chondron morphology in 3D, and 3) compare the differences in chondron morphology between intact and osteoarthritic AC. METHOD: The developed protocol is based on the dehydration of samples with hexamethyldisilazane (HMDS), followed by imaging with a desktop μCT. Chondron density and depth, as well as volume and sphericity, were calculated in 3D with a custom-made and validated algorithm employing semi-automatic chondron selection and segmentation. The quantitative parameters were analyzed at three AC depth zones (zone 1: 0–10%; zone 2: 10–40%; zone 3: 40–100%) and grouped by the OARSI histological grades (OARSI grades 0–1.0, n = 6; OARSI grades 3.0–3.5, n = 6). RESULTS: After semi-automatic chondron selection and segmentation, 1510 chondrons were approved for 3D morphometric analyses. The chondrons especially in the deeper tissue (zones 2 and 3) were significantly larger (P < 0.001) and less spherical (P < 0.001), respectively, in the OARSI grade 3–3.5 group compared to the OARSI grade 0–1.0 group. No statistically significant difference in chondron density between the OARSI grade groups was observed at different depths. CONCLUSION: We have developed a novel sample processing protocol for chondron imaging in 3D, as well as a high-throughput algorithm to semi-automatically quantify chondron/chondrocyte 3D morphology in AC. Our results also suggest that 3D chondron morphology is affected by the progression of osteoarthritis (OA). W.B. Saunders For The Osteoarthritis Research Society 2018-08 /pmc/articles/PMC6058088/ /pubmed/29802974 http://dx.doi.org/10.1016/j.joca.2018.05.012 Text en © 2018 The Authors http://creativecommons.org/licenses/by/4.0/ This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Kestilä, I.
Thevenot, J.
Finnilä, M.A.
Karhula, S.S.
Hadjab, I.
Kauppinen, S.
Garon, M.
Quenneville, E.
Haapea, M.
Rieppo, L.
Pritzker, K.P.
Buschmann, M.D.
Nieminen, H.J.
Saarakkala, S.
In vitro method for 3D morphometry of human articular cartilage chondrons based on micro-computed tomography
title In vitro method for 3D morphometry of human articular cartilage chondrons based on micro-computed tomography
title_full In vitro method for 3D morphometry of human articular cartilage chondrons based on micro-computed tomography
title_fullStr In vitro method for 3D morphometry of human articular cartilage chondrons based on micro-computed tomography
title_full_unstemmed In vitro method for 3D morphometry of human articular cartilage chondrons based on micro-computed tomography
title_short In vitro method for 3D morphometry of human articular cartilage chondrons based on micro-computed tomography
title_sort in vitro method for 3d morphometry of human articular cartilage chondrons based on micro-computed tomography
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6058088/
https://www.ncbi.nlm.nih.gov/pubmed/29802974
http://dx.doi.org/10.1016/j.joca.2018.05.012
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