3D-bioprinted gradient-structured scaffold generates anisotropic cartilage with vascularization by pore-size-dependent activation of HIF1α/FAK signaling axis

Nanomedicine. 2021 Oct:37:102426. doi: 10.1016/j.nano.2021.102426. Epub 2021 Jun 24.

Abstract

Articular cartilage injury is one of the most common diseases in orthopedics, which seriously affects patients' life quality, the development of a biomimetic scaffold that mimics the multi-layered gradient structure of native cartilage is a new cartilage repair strategy. It has been shown that scaffold topography affects cell attachment, proliferation, and differentiation; the underlying molecular mechanism of cell-scaffold interaction is still unclear. In the present study, we construct an anisotropic gradient-structured cartilage scaffold by three-dimensional (3D) bioprinting, in which bone marrow stromal cell (BMSC)-laden anisotropic hydrogels micropatterns were used for heterogeneous chondrogenic differentiation and physically gradient synthetic poly (ε-caprolactone) (PCL) to impart mechanical strength. In vitro and in vivo, we demonstrated that gradient-structured cartilage scaffold displayed better cartilage repair effect. The heterogeneous cartilage tissue maturation and blood vessel ingrowth were mediated by a pore-size-dependent mechanism and HIF1α/FAK axis activation. In summary, our results provided a theoretical basis for employing 3D bioprinting gradient-structured constructs for anisotropic cartilage regeneration and revealed HIF1α/FAK axis as a crucial regulator for cell-material interactions, so as to provide a new perspective for cartilage regeneration and repair.

Keywords: 3D-print; Bio-print; Cartilage; HIF1α/FAK; Hydrogel; Scaffold; Tissue engineering.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Animals
  • Anisotropy
  • Bioprinting
  • Cartilage, Articular / growth & development*
  • Cartilage, Articular / injuries
  • Cartilage, Articular / metabolism
  • Cartilage, Articular / pathology
  • Cell Differentiation / drug effects
  • Chondrogenesis / genetics
  • Disease Models, Animal
  • Focal Adhesion Kinase 1 / genetics*
  • Humans
  • Hydrogels / chemistry
  • Hydrogels / pharmacology
  • Hypoxia-Inducible Factor 1, alpha Subunit / genetics*
  • Mesenchymal Stem Cells / metabolism*
  • Polyesters / pharmacology
  • Printing, Three-Dimensional
  • Rabbits
  • Regeneration / drug effects
  • Regeneration / genetics
  • Signal Transduction / drug effects
  • Tissue Engineering
  • Tissue Scaffolds / chemistry
  • Transcriptome / genetics

Substances

  • HIF1A protein, human
  • Hydrogels
  • Hypoxia-Inducible Factor 1, alpha Subunit
  • Polyesters
  • polycaprolactone
  • Focal Adhesion Kinase 1
  • PTK2 protein, human