Rapid Fabrication of Anatomically-Shaped Bone Scaffolds Using Indirect 3D Printing and Perfusion Techniques

Int J Mol Sci. 2020 Jan 2;21(1):315. doi: 10.3390/ijms21010315.

Abstract

Fused deposit modeling (FDM) 3D printing technology cannot generate scaffolds with high porosity while maintaining good integrity, anatomical-surface detail, or high surface area-to-volume ratio (S/V). Solvent casting and particulate leaching (SCPL) technique generates scaffolds with high porosity and high S/V. However, it is challenging to generate complex-shaped scaffolds; and solvent, particle and residual water removal are time consuming. Here we report techniques surmounting these problems, successfully generating a highly porous scaffold with the anatomical-shape characteristics of a human femur by polylactic acid polymer (PLA) and PLA-hydroxyapatite (HA) casting and salt leaching. The mold is water soluble and is easily removable. By perfusing with ethanol, water, and dry air sequentially, the solvent, salt, and residual water were removed 20 fold faster than utilizing conventional methods. The porosities are uniform throughout the femoral shaped scaffold generated with PLA or PLA-HA. Both scaffolds demonstrated good biocompatibility with the pre-osteoblasts (MC3T3-E1) fully attaching to the scaffold within 8 h. The cells demonstrated high viability and proliferation throughout the entire time course. The HA-incorporated scaffolds demonstrated significantly higher compressive strength, modulus and osteoinductivity as evidenced by higher levels of alkaline-phosphatase activity and calcium deposition. When 3D printing a 3D model at 95% porosity or above, our technology preserves integrity and surface detail when compared with FDM-generated scaffolds. Our technology can also generate scaffolds with a 31 fold larger S/V than FDM. We have developed a technology that is a versatile tool in creating personalized, patient-specific bone graft scaffolds efficiently with high porosity, good scaffold integrity, high anatomical-shaped surface detail and large S/V.

Keywords: 3D Printing; anatomically-shaped mold; bone; perfusion; tissue engineering.

MeSH terms

  • Biocompatible Materials / chemical synthesis
  • Biocompatible Materials / chemistry*
  • Calcium / analysis
  • Cell Differentiation
  • Cell Proliferation
  • Cell Survival
  • Compressive Strength
  • Durapatite / chemistry
  • Femur
  • Humans
  • Materials Testing
  • Osteoblasts / chemistry*
  • Osteoblasts / enzymology
  • Osteoblasts / metabolism
  • Perfusion
  • Polyesters / chemistry
  • Porosity
  • Printing, Three-Dimensional*
  • Tissue Engineering / methods*
  • Tissue Scaffolds / adverse effects
  • Tissue Scaffolds / chemistry*

Substances

  • Biocompatible Materials
  • Polyesters
  • poly(lactide)
  • Durapatite
  • Calcium