Literature DB >> 21942869

Microdrilled cartilage defects treated with thrombin-solidified chitosan/blood implant regenerate a more hyaline, stable, and structurally integrated osteochondral unit compared to drilled controls.

Catherine Marchand1, Gaoping Chen, Nicolas Tran-Khanh, Jun Sun, Hongmei Chen, Michael D Buschmann, Caroline D Hoemann.   

Abstract

This study analyzed the long-term cartilage and subchondral bone repair of microdrilled defects treated with chitosan glycerol-phosphate/blood implant, using thrombin (Factor IIa) to accelerate in situ solidification. We also evaluated the cartilage repair response to six smaller microdrill holes compared with two larger holes. Bilateral knee trochlear cartilage defects were created in n=8 skeletally mature rabbits, drilled with six proximal 0.5 mm and two distal 0.9 mm holes, then covered with in situ-solidified IIa-implants (treated) or with IIa-alone (control). After 6.5 months of repair, cartilage repair tissues were analyzed by histological scoring and histomorphometry for hyaline matrix characteristics and osseous integration. Subchondral repair bone was analyzed by 3D microcomputed tomography and compared to acute defects (n=6) and intact trochlea (n=8). Implant-treated cartilage repair tissues had higher structural integrity through the entire defect (p=0.02), twofold higher percent staining for glycosaminoglycan (p=0.0004), and ~24% more collagen type II staining over the smaller drill holes (p=0.008) compared with controls. Otherwise, hole diameter had no specific effect on cartilage repair. The subchondral bone plate was partially restored in treated and control defects but less dense than intact trochlea, with evidence of incomplete regeneration of the calcified cartilage layer. More residual drill holes (p=0.054) were detected in control versus treated defects, and control defects with more than 40% residual holes presented abnormally thicker trabeculae compared with treated defects. Low osteoclast numbers after 6.5 months repair suggested that bone was no longer remodeling. The subchondral bone plate surrounding the defects exhibited a significant thickening compared with age-matched intact trochlea. These data suggest that debridement and drilling can lead to long-term subchondral bone changes outside the cartilage defect. Compared with drilled controls, chitosan implants solidified with thrombin elicited a more hyaline and structurally integrated osteochondral unit, features needed for long-term durability.

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Year:  2011        PMID: 21942869     DOI: 10.1089/ten.TEA.2011.0178

Source DB:  PubMed          Journal:  Tissue Eng Part A        ISSN: 1937-3341            Impact factor:   3.845


  11 in total

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2.  The Subchondral Bone Is Affected by Bone Marrow Stimulation: A Systematic Review of Preclinical Animal Studies.

Authors:  Dexter Seow; Youichi Yasui; Ian D Hutchinson; Eoghan T Hurley; Yoshiharu Shimozono; John G Kennedy
Journal:  Cartilage       Date:  2017-06-02       Impact factor: 4.634

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Journal:  Adv Orthop       Date:  2012-05-07

4.  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 5.  The biology and clinical evidence of microfracture in hip preservation surgery.

Authors:  Chadwick John Green; Aswin Beck; David Wood; Ming H Zheng
Journal:  J Hip Preserv Surg       Date:  2016-02-26

Review 6.  Endogenous Repair and Regeneration of Injured Articular Cartilage: A Challenging but Promising Therapeutic Strategy.

Authors:  Hongzhi Hu; Weijian Liu; Caixia Sun; Qiuyuan Wang; Wenbo Yang; ZhiCai Zhang; Zhidao Xia; Zengwu Shao; Baichuan Wang
Journal:  Aging Dis       Date:  2021-06-01       Impact factor: 6.745

7.  Microdrilling Demonstrates Superior Patient-Reported Outcomes and Lower Revision Rates Than Traditional Microfracture: A Matched Cohort Analysis.

Authors:  Alexander Beletsky; Neal B Naveen; Tracy Tauro; Taylor M Southworth; Jorge Chahla; Nikhil N Verma; Adam B Yanke; Brian J Cole
Journal:  Arthrosc Sports Med Rehabil       Date:  2021-04-06

8.  Transcutaneous treatment with vetdrop(®) sustains the adjacent cartilage in a microfracturing joint defect model in sheep.

Authors:  M Sidler; N Fouché; I Meth; F von Hahn; B von Rechenberg; Pw Kronen
Journal:  Open Orthop J       Date:  2013-03-05

9.  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

10.  Cartilage repair and subchondral bone migration using 3D printing osteochondral composites: a one-year-period study in rabbit trochlea.

Authors:  Weijie Zhang; Qin Lian; Dichen Li; Kunzheng Wang; Dingjun Hao; Weiguo Bian; Jiankang He; Zhongmin Jin
Journal:  Biomed Res Int       Date:  2014-08-07       Impact factor: 3.411

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