Literature DB >> 21044693

Temporal and spatial modulation of chondrogenic foci in subchondral microdrill holes by chitosan-glycerol phosphate/blood implants.

A Chevrier1, C D Hoemann, J Sun, M D Buschmann.   

Abstract

OBJECTIVE: Subchondral drilling initiates a cartilage repair response involving formation of chondrogenic foci in the subchondral compartment. The purpose of this study was to structurally characterize these sites of chondrogenesis and to investigate the effects of chitosan-glycerol phosphate (GP)/blood implants on their formation.
METHOD: Thirty-two New Zealand White rabbits received bilateral cartilage defects bearing four subchondral drill holes. One knee per rabbit was treated by solidifying a chitosan-GP/blood implant over the defect. After 1-56 days of repair, chondrogenic foci were characterized by histostaining and immunostaining. Collagen fiber orientation was characterized by polarized light microscopy.
RESULTS: Glycosaminoglycan and collagen type II were present throughout the foci while the upper zone expressed collagen type I and the lower zone collagen type X. Large chondrogenic foci had a stratified structure with flatter cells closer to the articular surface, and round or hypertrophic chondrocytes deeper in the drill holes that showed signs of calcification after 3 weeks of repair in control defects. Markers for pre-hypertrophic chondrocytes (Patched) and for proliferation (Ki-67) were detected within foci. Some cells displayed a columnar arrangement where collagen was vertically oriented. For treated defects, chondrogenic foci appeared 1-3 weeks later, foci were nascent and mature rather than resorbing, and foci developed closer to the articular surface.
CONCLUSIONS: Chondrogenic foci bear some similarities to growth cartilage and can give rise to a repair tissue that has similar zonal stratification as articular cartilage. The temporal and spatial formation of chondrogenic foci can be modulated by cartilage repair therapies.
Copyright © 2010 Osteoarthritis Research Society International. Published by Elsevier Ltd. All rights reserved.

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Year:  2010        PMID: 21044693     DOI: 10.1016/j.joca.2010.10.026

Source DB:  PubMed          Journal:  Osteoarthritis Cartilage        ISSN: 1063-4584            Impact factor:   6.576


  12 in total

1.  Quality of Cartilage Repair from Marrow Stimulation Correlates with Cell Number, Clonogenic, Chondrogenic, and Matrix Production Potential of Underlying Bone Marrow Stromal Cells in a Rabbit Model.

Authors:  Garima Dwivedi; Anik Chevrier; Mohamad-Gabriel Alameh; Caroline D Hoemann; Michael D Buschmann
Journal:  Cartilage       Date:  2018-12-20       Impact factor: 4.634

2.  Evaluation of three-dimensional chitosan-agarose-gelatin cryogel scaffold for the repair of subchondral cartilage defects: an in vivo study in a rabbit model.

Authors:  Ankur Gupta; Sumrita Bhat; Pankaj R Jagdale; Bhushan P Chaudhari; Lars Lidgren; Kailash C Gupta; Ashok Kumar
Journal:  Tissue Eng Part A       Date:  2014-12       Impact factor: 3.845

3.  Treatment of Osteochondral Lesions of the Talus With Bone Marrow Stimulation and Chitosan-Glycerol Phosphate/Blood Implants (BST-CarGel).

Authors:  Jesús Vilá Y Rico; Antonio Dalmau; Francisco Javier Chaqués; Jordi Asunción
Journal:  Arthrosc Tech       Date:  2015-11-09

4.  Osteochondral defect repair using bilayered hydrogels encapsulating both chondrogenically and osteogenically pre-differentiated mesenchymal stem cells in a rabbit model.

Authors:  J Lam; S Lu; E J Lee; J E Trachtenberg; V V Meretoja; R L Dahlin; J J J P van den Beucken; Y Tabata; M E Wong; J A Jansen; A G Mikos; F K Kasper
Journal:  Osteoarthritis Cartilage       Date:  2014-07-04       Impact factor: 6.576

5.  [Defect models for the regeneration of articular cartilage in large animals].

Authors:  B Schneider-Wald; A K von Thaden; M L R Schwarz
Journal:  Orthopade       Date:  2013-04       Impact factor: 1.087

6.  BST-CarGel® Treatment Maintains Cartilage Repair Superiority over Microfracture at 5 Years in a Multicenter Randomized Controlled Trial.

Authors:  Matthew S Shive; William D Stanish; Robert McCormack; Francisco Forriol; Nicholas Mohtadi; Stéphane Pelet; Jacques Desnoyers; Stéphane Méthot; Kendra Vehik; Alberto Restrepo
Journal:  Cartilage       Date:  2015-04       Impact factor: 4.634

7.  Supporting Biomaterials for Articular Cartilage Repair.

Authors:  Daniela Filipa Duarte Campos; Wolf Drescher; Björn Rath; Markus Tingart; Horst Fischer
Journal:  Cartilage       Date:  2012-07       Impact factor: 4.634

8.  Bone-Induced Chondroinduction in Sheep Jamshidi Biopsy Defects with and without Treatment by Subchondral Chitosan-Blood Implant: 1-Day, 3-Week, and 3-Month Repair.

Authors:  Angela D Bell; Viorica Lascau-Coman; Jun Sun; Gaoping Chen; Mark W Lowerison; Mark B Hurtig; Caroline D Hoemann
Journal:  Cartilage       Date:  2013-04       Impact factor: 4.634

Review 9.  Chitosans for delivery of nucleic acids.

Authors:  Michael D Buschmann; Abderrazzak Merzouki; Marc Lavertu; Marc Thibault; Myriam Jean; Vincent Darras
Journal:  Adv Drug Deliv Rev       Date:  2013-07-18       Impact factor: 15.470

10.  Subchondral pre-solidified chitosan/blood implants elicit reproducible early osteochondral wound-repair responses including neutrophil and stromal cell chemotaxis, bone resorption and repair, enhanced repair tissue integration and delayed matrix deposition.

Authors:  Charles-Hubert Lafantaisie-Favreau; Jessica Guzmán-Morales; Jun Sun; Gaoping Chen; Adam Harris; Thomas D Smith; Alberto Carli; Janet Henderson; William D Stanish; Caroline D Hoemann
Journal:  BMC Musculoskelet Disord       Date:  2013-01-16       Impact factor: 2.362

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