Improved cartilage integration and interfacial strength after enzymatic treatment in a cartilage transplantation model
January 2004
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The objective of the present study was to investigate whether treatment of articular cartilage with hyaluronidase and collagenase enhances histological and mechanical integration of a cartilage graft into a defect. Discs of 3 mm diameter were taken from 8-mm diameter bovine cartilage explants. Both discs and annulus were either treated for 24 hours with 0.1% hyaluronidase followed by 24 hours with 10 U/ml collagenase or left untreated (controls). Discs and annulus were reassembled and implanted subcutaneously in nude mice for 5 weeks. Integration of disc with surrounding cartilage was assessed histologically and tested biomechanically by performing a push-out test. After 5 weeks a significant increase in viable cell counts was seen in wound edges of the enzyme-treated group as compared with controls. Furthermore, matrix integration (expressed as a percentage of the total interface length that was connected; mean +/- standard error) was 83 +/- 15% in the treated samples versus 44 +/- 40% in the untreated controls. In the enzyme-treated group only, picro-Sirius Red staining revealed collagen crossing the interface perpendicular to the wound surface. Immunohistochemical analyses demonstrated that the interface tissue contained cartilage-specific collagen type II. Collagen type I was found only in a small region of fibrous tissue at the level of the superficial layer, and collagen type III was completely absent in both groups. A significant difference in interfacial strength was found using the push-out test: 1.32 +/- 0.15 MPa in the enzyme-treated group versus 0.84 +/- 0.14 MPa in the untreated controls. The study shows that enzyme treatment of cartilage wounds increases histological integration and improves biomechanical bonding strength. Enzymatic treatment may represent a promising addition to current techniques for articular cartilage repair.
- Animals
- Mice
- Research Support, U.S. Gov't, P.H.S.
- Mice, Nude
- Mice, Inbred BALB C
- Cattle
- Cell Survival/physiology
- Cell Count
- Models, Animal
- Research Support, N.I.H., Extramural
- Cartilage, Articular/chemistry/*drug effects/pathology/*transplantation
- Collagen Type I/immunology
- Collagen Type II/immunology
- Collagenases/therapeutic use
- Frozen Sections
- Hyaluronoglucosaminidase/therapeutic use
- Chondrocytes/chemistry/physiology/transplantation
- Transplantation, Heterologous/*methods
- cartilage
- interface
- collagen
- wound
- treatment
- integration
- group
- articular
- control
- strength
- repair
- articular cartilage
- tissue
- study
- chondrocyte
- wound edges
- sample
- matrix
- collagen type iii
- fibre