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International Cartilage Repair Society (ICRS) Recommended Guidelines for Histological Endpoints for Cartilage Repair Studies in Animal Models and Clinical Trials

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Journal Cartilage
Date 2015 Jun 13
PMID 26069577
Citations 71
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Abstract

Cartilage repair strategies aim to resurface a lesion with osteochondral tissue resembling native cartilage, but a variety of repair tissues are usually observed. Histology is an important structural outcome that could serve as an interim measure of efficacy in randomized controlled clinical studies. The purpose of this article is to propose guidelines for standardized histoprocessing and unbiased evaluation of animal tissues and human biopsies. Methods were compiled from a literature review, and illustrative data were added. In animal models, treatments are usually administered to acute defects created in healthy tissues, and the entire joint can be analyzed at multiple postoperative time points. In human clinical therapy, treatments are applied to developed lesions, and biopsies are obtained, usually from a subset of patients, at a specific time point. In striving to standardize evaluation of structural endpoints in cartilage repair studies, 5 variables should be controlled: 1) location of biopsy/sample section, 2) timing of biopsy/sample recovery, 3) histoprocessing, 4) staining, and 5) blinded evaluation with a proper control group. Histological scores, quantitative histomorphometry of repair tissue thickness, percentage of tissue staining for collagens and glycosaminoglycan, polarized light microscopy for collagen fibril organization, and subchondral bone integration/structure are all relevant outcome measures that can be collected and used to assess the efficacy of novel therapeutics. Standardized histology methods could improve statistical analyses, help interpret and validate noninvasive imaging outcomes, and permit cross-comparison between studies. Currently, there are no suitable substitutes for histology in evaluating repair tissue quality and cartilaginous character.

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References
1.
DellAccio F, Vanlauwe J, Bellemans J, Neys J, De Bari C, Luyten F . Expanded phenotypically stable chondrocytes persist in the repair tissue and contribute to cartilage matrix formation and structural integration in a goat model of autologous chondrocyte implantation. J Orthop Res. 2003; 21(1):123-31. DOI: 10.1016/S0736-0266(02)00090-6. View

2.
Frisbie D, Morisset S, Ho C, Rodkey W, Steadman J, McIlwraith C . Effects of calcified cartilage on healing of chondral defects treated with microfracture in horses. Am J Sports Med. 2006; 34(11):1824-31. DOI: 10.1177/0363546506289882. View

3.
Fortier L, Potter H, Rickey E, Schnabel L, Foo L, Chong L . Concentrated bone marrow aspirate improves full-thickness cartilage repair compared with microfracture in the equine model. J Bone Joint Surg Am. 2010; 92(10):1927-37. DOI: 10.2106/JBJS.I.01284. View

4.
Pineda S, Pollack A, Stevenson S, Goldberg V, Caplan A . A semiquantitative scale for histologic grading of articular cartilage repair. Acta Anat (Basel). 1992; 143(4):335-40. DOI: 10.1159/000147272. View

5.
Hunziker E, Quinn T, Hauselmann H . Quantitative structural organization of normal adult human articular cartilage. Osteoarthritis Cartilage. 2002; 10(7):564-72. DOI: 10.1053/joca.2002.0814. View