A comparative study on collagen type i and hyaluronic acid dependent cell behavior for osteochondral tissue bioprinting

  • Ju Young Park
  • , Jong Cheol Choi
  • , Jin Hyung Shim
  • , Jung Seob Lee
  • , Hyoungjun Park
  • , Sung Won Kim
  • , Junsang Doh
  • , Dong Woo Cho

Research output: Contribution to journalArticlepeer-review

199 Scopus citations

Abstract

Bioprinting is a promising technique for engineering composite tissues, such as osteochondral tissues. In this study, as a first step toward bioprinting-based osteochondral tissue regeneration, we systematically examined the behavior of chondrocytes and osteoblasts to hyaluronic acid (HA) and type I collagen (Col-1) hydrogels. First, we demonstrated that cells on hydrogels that were comprised of major native tissue extracellular matrix (ECM) components (i.e. chondrocytes on HA hydrogels and osteoblasts on Col-1 hydrogels) exhibited better proliferation and cell function than cells on non-native ECM hydrogels (i.e., chondrocytes on Col-1 hydrogels and osteoblasts on HA hydrogels). In addition, cells located near their native ECM hydrogels migrated towards them. Finally, we bioprinted three-dimensional (3D) osteochondral tissue-mimetic structures composed of two compartments, osteoblast-encapsulated Col-1 hydrogels and chondrocyte-encapsulated HA hydrogels, and found viability and functions of each cell type were well maintained within the 3D structures up to 14days in vitro. These results suggest that with proper choice of hydrogel materials, bioprinting-based approaches can be successfully applied for osteochondral tissue regeneration.

Original languageEnglish
Article number035004
JournalBiofabrication
Volume6
Issue number3
DOIs
StatePublished - Sep 2014

Keywords

  • bioprinting
  • cell migration
  • extracellular matrix
  • osteochondral tissue
  • tissue engineering

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