Rapid Chondrocyte Isolation for Tissue Engineering Applications: The Effect of Enzyme Concentration and Temporal Exposure on the Matrix Forming Capacity of Nasal Derived Chondrocytes

Biomed Res Int. 2017:2017:2395138. doi: 10.1155/2017/2395138. Epub 2017 Feb 28.

Abstract

Laboratory based processing and expansion to yield adequate cell numbers had been the standard in Autologous Disc Chondrocyte Transplantation (ADCT), Allogeneic Juvenile Chondrocyte Implantation (NuQu®), and Matrix-Induced Autologous Chondrocyte Implantation (MACI). Optimizing cell isolation is a key challenge in terms of obtaining adequate cell numbers while maintaining a vibrant cell population capable of subsequent proliferation and matrix elaboration. However, typical cell yields from a cartilage digest are highly variable between donors and based on user competency. The overall objective of this study was to optimize chondrocyte isolation from cartilaginous nasal tissue through modulation of enzyme concentration exposure (750 and 3000 U/ml) and incubation time (1 and 12 h), combined with physical agitation cycles, and to assess subsequent cell viability and matrix forming capacity. Overall, increasing enzyme exposure time was found to be more detrimental than collagenase concentration for subsequent viability, proliferation, and matrix forming capacity (sGAG and collagen) of these cells resulting in nonuniform cartilaginous matrix deposition. Taken together, consolidating a 3000 U/ml collagenase digest of 1 h at a ratio of 10 ml/g of cartilage tissue with physical agitation cycles can improve efficiency of chondrocyte isolation, yielding robust, more uniform matrix formation.

MeSH terms

  • Animals
  • Cartilage / cytology*
  • Cartilage / growth & development
  • Cartilage / transplantation
  • Cattle
  • Cell Proliferation / drug effects
  • Cell Separation*
  • Chondrocytes / cytology*
  • Chondrocytes / transplantation
  • Collagenases / administration & dosage
  • Humans
  • Nasal Septum / cytology
  • Nasal Septum / transplantation
  • Tissue Engineering*
  • Transplantation, Autologous / methods
  • Transplantation, Homologous / methods

Substances

  • Collagenases