Human Cartilage Repair with a Photoreactive Adhesive-Hydrogel Composite

软骨 生物医学工程 细胞外基质 磁共振成像 硫酸软骨素 医学 生物材料 间充质干细胞 自愈水凝胶 材料科学 化学 病理 解剖 糖胺聚糖 放射科 高分子化学 生物化学
作者
Blanka Sharma,Sara Fermanian,Matthew Gibson,Shimon Unterman,Daniel A. Herzka,Brett M. Cascio,Jeannine M. Coburn,Alexander Y. Hui,Norman Marcus,Garry E. Gold,Jennifer H. Elisseeff
出处
期刊:Science Translational Medicine [American Association for the Advancement of Science (AAAS)]
卷期号:5 (167) 被引量:282
标识
DOI:10.1126/scitranslmed.3004838
摘要

Surgical options for cartilage resurfacing may be significantly improved by advances and application of biomaterials that direct tissue repair. A poly(ethylene glycol) diacrylate (PEGDA) hydrogel was designed to support cartilage matrix production, with easy surgical application. A model in vitro system demonstrated deposition of cartilage-specific extracellular matrix in the hydrogel biomaterial and stimulation of adjacent cartilage tissue development by mesenchymal stem cells. For translation to the joint environment, a chondroitin sulfate adhesive was applied to covalently bond and adhere the hydrogel to cartilage and bone tissue in articular defects. After preclinical testing in a caprine model, a pilot clinical study was initiated where the biomaterials system was combined with standard microfracture surgery in 15 patients with focal cartilage defects on the medial femoral condyle. Control patients were treated with microfracture alone. Magnetic resonance imaging showed that treated patients achieved significantly higher levels of tissue fill compared to controls. Magnetic resonance spin-spin relaxation times (T(2)) showed decreasing water content and increased tissue organization over time. Treated patients had less pain compared with controls, whereas knee function [International Knee Documentation Committee (IKDC)] scores increased to similar levels between the groups over the 6 months evaluated. No major adverse events were observed over the study period. With further clinical testing, this practical biomaterials strategy has the potential to improve the treatment of articular cartilage defects.
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