Degradable calcium deficient hydroxyapatite/poly(lactic-glycolic acid copolymer) bilayer scaffold through integral molding 3D printing for bone defect repair

Author:

Wu Ning,Liu Jia,Ma Weibo,Dong Xian,Wang Feng,Yang DichengORCID,Xu Yan

Abstract

Abstract A novel method was developed for calcium deficient hydroxyapatite (CDHA) scaffold 3D printing, through which a bilayer scaffold was fabricated by the integral molding of individual CDHA and poly(lactic-glycolic acid copolymer) (PLGA). The hydration reaction of α-tricalcium phosphate (TCP) was utilized to form CDHA, and a mixed solution of gelatin, glycerine and glutaraldehyde was applied as the dispersant and adhesive. The concentration of the glutaraldehyde (1‰(v/v)) and the mixing ratio of α-TCP (0.6, 0.8, 1.0 and 1.2 g ml−1) were studied with regard to the effect on the forming ability of the CDHA ink. The influence of α-TCP proportion (0.6, 0.8, 1.0 and 1.2 g ml−1) on the formation of CDHA was also researched in phase analysis, morphology and compressive strength measurements. The CDHA/PLGA bilayer scaffold was fabricated with a good combination of the two components by 3D printing. The in vitro degradation, cytotoxicity and cell proliferation behavior were studied. Meanwhile, the in-vivo performances in terms of surgical safety, biodegradation and osteogenic capacity were investigated with a cortical bone defect model in a rabbit femur. The results showed that the CDHA/PLGA bilayer scaffold had excellent biocompatibility and no cytotoxicity. The scaffolds were successfully implanted and presented remarkable osteogenic capacity within 6 months through analyses in radiography and histology. In conclusion, the method has a potential clinical application in diverse bone repair practices by varied 3D-printing fabrication.

Funder

Shanghai Outstanding Technology Leader

Biopharmaceutical Support Program

Shanghai Rising-Star Program

National Key R&D Program of China

National Science Foundation for Young Scientists of China

Publisher

IOP Publishing

Subject

Biomedical Engineering,General Medicine,Biomaterials,Biochemistry,Bioengineering,Biotechnology

Reference45 articles.

1. Autogenous bone: is it still the gold standard?;Misch;Implant Dent.,2010

2. Physical and monetary costs associated with autogenous bone graft harvesting;St John;Am. J. Orthop.,2003

3. Risk of prion disease transmission through bovine-derived bone substitutes: a systematic review;Kim;Clin. Implant Dent. Relat. Res.,2013

4. Treatment of long bone defects and non-unions: from research to clinical practice;Berner;Cell Tissue Res.,2012

5. Bone regeneration: current concepts and future directions;Dimitriou;BMC Med.,2011

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