DLP fabrication of customized porous bioceramics with osteoinduction ability for remote isolation bone regeneration

Biomater Adv. 2023 Feb:145:213261. doi: 10.1016/j.bioadv.2022.213261. Epub 2022 Dec 22.

Abstract

Currently, various bioceramics have been widely used in bone regeneration. However, it remains a huge challenge to remote isolation bone regeneration, such as severed finger regeneration. The remote isolation bone tissue has a poor regenerative microenvironment that lacks enough blood and nutrition supply. It is very difficult to repair and regenerate. In this study, well-controlled multi-level porous 3D-printed calcium phosphate (CaP) bioceramic scaffolds with precision customized structures were fabricated by high-resolution digital light projection (DLP) printing technology for remote isolation bone regeneration. In vitro results demonstrated that optimizing material processing procedures could achieve multi-level control of 3D-printed CaP bioceramic scaffolds and enhance the osteoinduction ability of bioceramics effectively. In vivo results indicated that 3D-printed CaP bioceramic scaffolds constructed by optimized processing procedure exhibited a promising ability of bone regeneration and osteoinduction in ectopic osteogenesis and in situ caudal vertebrae regeneration in beagles. This study provided a promising strategy based on 3D-printed CaP bioceramic scaffolds constructed by optimized processing procedures for remote isolation bone regeneration, such as severed finger regeneration.

Keywords: Bioceramics; Bone regeneration; Bone repair; DLP technology; Osteogenesis.

MeSH terms

  • Animals
  • Bone Regeneration
  • Bone and Bones
  • Dogs
  • Musculoskeletal Diseases*
  • Porosity
  • Tissue Scaffolds* / chemistry

Substances

  • calcium phosphate