BMP-2-immobilized PCL 3D printing scaffold with a leaf-stacked structure as a physically and biologically activated bone graft

Author:

Kim Min Ji,Park Jin-Ho,Seok Ji Min,Jung Jiwoon,Hwang Tae Sung,Lee Hee-Chun,Lee Jin Ho,Park Su AORCID,Byun June-Ho,Oh Se HeangORCID

Abstract

Abstract Although three-dimensional (3D) printing techniques are used to mimic macro- and micro-structures as well as multi-structural human tissues in tissue engineering, efficient target tissue regeneration requires bioactive 3D printing scaffolds. In this study, we developed a bone morphogenetic protein-2 (BMP-2)-immobilized polycaprolactone (PCL) 3D printing scaffold with leaf-stacked structure (LSS) (3D-PLSS-BMP) as a bioactive patient-tailored bone graft. The unique LSS was introduced on the strand surface of the scaffold via heating/cooling in tetraglycol without significant deterioration in physical properties. The BMP-2 adsorbed on 3D-PLSS-BMP was continuously released from LSS over a period of 32 d. The LSS can be a microtopographical cue for improved focal cell adhesion, proliferation, and osteogenic differentiation. In vitro cell culture and in vivo animal studies demonstrated the biological (bioactive BMP-2) and physical (microrough structure) mechanisms of 3D-PLSS-BMP for accelerated bone regeneration. Thus, bioactive molecule-immobilized 3D printing scaffold with LSS represents a promising physically and biologically activated bone graft as well as an advanced tool for widespread application in clinical and research fields.

Funder

Ministry of Education

Ministry of Science and ICT, and Ministry of Health and Welfare

Ministry of Science & ICT

Publisher

IOP Publishing

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