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Three-Dimensional Printing of a Hybrid Bioceramic and Biopolymer Porous Scaffold for Promoting Bone Regeneration Potential.
Hung, Kuo-Sheng; Chen, May-Show; Lan, Wen-Chien; Cho, Yung-Chieh; Saito, Takashi; Huang, Bai-Hung; Tsai, Hsin-Yu; Hsieh, Chia-Chien; Ou, Keng-Liang; Lin, Hung-Yang.
Afiliação
  • Hung KS; Graduate Institute of Injury Prevention and Control, College of Public Health, Taipei Medical University, Taipei 110, Taiwan.
  • Chen MS; Department of Neurosurgery, Taipei Medical University-Wan Fang Hospital, Taipei 116, Taiwan.
  • Lan WC; School of Dentistry, College of Oral Medicine, Taipei Medical University, Taipei 110, Taiwan.
  • Cho YC; Division of Prosthodontics, Department of Dentistry, Taipei Medical University Hospital, Taipei 110, Taiwan.
  • Saito T; Department of Oral Hygiene Care, Ching Kuo Institute of Management and Health, Keelung 203, Taiwan.
  • Huang BH; School of Dentistry, College of Oral Medicine, Taipei Medical University, Taipei 110, Taiwan.
  • Tsai HY; Biomedical Technology R & D Center, China Medical University, Taichung 404, Taiwan.
  • Hsieh CC; Division of Clinical Cariology and Endodontology, Department of Oral Rehabilitation, School of Dentistry, Health Sciences University of Hokkaido, Ishikari 061-0293, Japan.
  • Ou KL; Biomedical Technology R & D Center, China Medical University, Taichung 404, Taiwan.
  • Lin HY; Graduate Institute of Dental Science, College of Dentistry, China Medical University, Taichung 404, Taiwan.
Materials (Basel) ; 15(5)2022 Mar 07.
Article em En | MEDLINE | ID: mdl-35269209
ABSTRACT
In this study, we proposed a three-dimensional (3D) printed porous (termed as 3DPP) scaffold composed of bioceramic (beta-tricalcium phosphate (ß-TCP)) and thermoreversible biopolymer (pluronic F-127 (PF127)) that may provide bone tissue ingrowth and loading support for bone defect treatment. The investigated scaffolds were printed in three different ranges of pore sizes for comparison (3DPP-1 150−200 µm, 3DPP-2 250−300 µm, and 3DPP-3 300−350 µm). The material properties and biocompatibility of the 3DPP scaffolds were characterized using scanning electron microscopy, X-ray diffractometry, contact angle goniometry, compression testing, and cell viability assay. In addition, micro-computed tomography was applied to investigate bone regeneration behavior of the 3DPP scaffolds in the mini-pig model. Analytical results showed that the 3DPP scaffolds exhibited well-defined porosity, excellent microstructural interconnectivity, and acceptable wettability (θ < 90°). Among all groups, the 3DPP-1 possessed a significantly highest compressive force 273 ± 20.8 Kgf (* p < 0.05). In vitro experiment results also revealed good cell viability and cell attachment behavior in all 3DPP scaffolds. Furthermore, the 3DPP-3 scaffold showed a significantly higher percentage of bone formation volume than the 3DPP-1 scaffold at week 8 (* p < 0.05) and week 12 (* p < 0.05). Hence, the 3DPP scaffold composed of ß-TCP and F-127 is a promising candidate to promote bone tissue ingrowth into the porous scaffold with decent biocompatibility. This scaffold particularly fabricated with a pore size of around 350 µm (i.e., 3DPP-3 scaffold) can provide proper loading support and promote bone regeneration in bone defects when applied in dental and orthopedic fields.
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Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Idioma: En Revista: Materials (Basel) Ano de publicação: 2022 Tipo de documento: Article País de afiliação: Taiwan

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Idioma: En Revista: Materials (Basel) Ano de publicação: 2022 Tipo de documento: Article País de afiliação: Taiwan