4.7 Article

3D Cartilage Regeneration With Certain Shape and Mechanical Strength Based on Engineered Cartilage Gel and Decalcified Bone Matrix

期刊

出版社

FRONTIERS MEDIA SA
DOI: 10.3389/fcell.2021.638115

关键词

3D cartilage regeneration; engineered cartilage gel; decalcified bone matrix; tissue engineering; nutrient efficiency

资金

  1. National Key Research and Development Program of China [2017YFC1103900]
  2. National Natural Science Foundation of China [81871502, 81701843, 81671837]
  3. Shanghai Excellent Technical Leader [18XD1421500]
  4. Program of Shanghai Academic/Technology Research Leader [19XD1431100]
  5. Shanghai Collaborative Innovation Program on Regenerative Medicine and Stem Cell Research [2019CXJQ01]

向作者/读者索取更多资源

By combining cartilage sheets and decalcified bone matrix, viable 3D cartilage with controlled shape and mechanical strength was successfully regenerated, demonstrating good biocompatibility and mechanical properties.
Scaffold-free cartilage-sheet technology can stably regenerate high-quality cartilage tissue in vivo. However, uncontrolled shape maintenance and mechanical strength greatly hinder its clinical translation. Decalcified bone matrix (DBM) has high porosity, a suitable pore structure, and good biocompatibility, as well as controlled shape and mechanical strength. In this study, cartilage sheet was prepared into engineered cartilage gel (ECG) and combined with DBM to explore the feasibility of regenerating 3D cartilage with controlled shape and mechanical strength. The results indicated that ECG cultured in vitro for 3 days (3 d) and 15 days (15 d) showed good biocompatibility with DBM, and the ECG-DBM constructs successfully regenerated viable 3D cartilage with typical mature cartilage features in both nude mice and autologous goats. Additionally, the regenerated cartilage had comparable mechanical properties to native cartilage and maintained its original shape. To further determine the optimal seeding parameters for ECG, the 3 d ECG regenerated using human chondrocytes was diluted in different concentrations (1:3, 1:2, and 1:1) for seeding and in vivo implantation. The results showed that the regenerated cartilage in the 1:2 group exhibited better shape maintenance and homogeneity than the other groups. The current study established a novel mode of 3D cartilage regeneration based on the design concept of steel (DBM)-reinforced concrete (ECG) and successfully regenerated homogenous and mature 3D cartilage with controlled shape and mechanical strength, which hopefully provides an ideal cartilage graft for the repair of various cartilage defects.

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