» Articles » PMID: 32971749

3D-Printed Ceramic Bone Scaffolds with Variable Pore Architectures

Overview
Journal Int J Mol Sci
Publisher MDPI
Date 2020 Sep 25
PMID 32971749
Citations 18
Authors
Affiliations
Soon will be listed here.
Abstract

This study evaluated the mechanical properties and bone regeneration ability of 3D-printed pure hydroxyapatite (HA)/tricalcium phosphate (TCP) pure ceramic scaffolds with variable pore architectures. A digital light processing (DLP) 3D printer was used to construct block-type scaffolds containing only HA and TCP after the polymer binder was completely removed by heat treatment. The compressive strength and porosity of the blocks with various structures were measured; scaffolds with different pore sizes were implanted in rabbit calvarial models. The animals were observed for eight weeks, and six animals were euthanized in the fourth and eighth weeks. Then, the specimens were evaluated using radiological and histological analyses. Larger scaffold pore sizes resulted in enhanced bone formation after four weeks ( < 0.05). However, in the eighth week, a correlation between pore size and bone formation was not observed ( > 0.05). The findings showed that various pore architectures of HA/TCP scaffolds can be achieved using DLP 3D printing, which can be a valuable tool for optimizing bone-scaffold properties for specific clinical treatments. As the pore size only influenced bone regeneration in the initial stage, further studies are required for pore-size optimization to balance the initial bone regeneration and mechanical strength of the scaffold.

Citing Articles

Enhanced Bone Healing in Critical-Sized Rabbit Femoral Defects: Impact of Helical and Alternate Scaffold Architectures.

Alonso-Fernandez I, Haugen H, Nogueira L, Lopez-Alvarez M, Gonzalez P, Lopez-Pena M Polymers (Basel). 2024; 16(9).

PMID: 38732711 PMC: 11085737. DOI: 10.3390/polym16091243.


Engineering Precise Interconnected Porosity in β-Tricalcium Phosphate (β-TCP) Matrices by Means of Top-Down Digital Light Processing.

Wojcik T, Chai F, Hornez V, Raoul G, Hornez J Biomedicines. 2024; 12(4).

PMID: 38672092 PMC: 11047908. DOI: 10.3390/biomedicines12040736.


The Synergetic Effect of 3D Printing and Electrospinning Techniques in the Fabrication of Bone Scaffolds.

Qi Y, Lv H, Huang Q, Pan G Ann Biomed Eng. 2024; 52(6):1518-1533.

PMID: 38530536 DOI: 10.1007/s10439-024-03500-5.


Biomaterials Adapted to Vat Photopolymerization in 3D Printing: Characteristics and Medical Applications.

Timofticiuc I, Calinescu O, Iftime A, Dragosloveanu S, Caruntu A, Scheau A J Funct Biomater. 2024; 15(1).

PMID: 38248674 PMC: 10816811. DOI: 10.3390/jfb15010007.


Traumatic Fracture Treatment: Calcium Phosphate Bone Substitute Case-Control Study in Humerus, Radius, Tibia Fractures-Assessing Efficacy and Recovery Outcomes.

Knapp G, Pawelke J, Heiss C, Elmas S, Vinayahalingam V, ElKhassawna T Biomedicines. 2023; 11(10).

PMID: 37893234 PMC: 10604612. DOI: 10.3390/biomedicines11102862.


References
1.
Browaeys H, Bouvry P, De Bruyn H . A literature review on biomaterials in sinus augmentation procedures. Clin Implant Dent Relat Res. 2007; 9(3):166-77. DOI: 10.1111/j.1708-8208.2007.00050.x. View

2.
Tarafder S, Bose S . Polycaprolactone-coated 3D printed tricalcium phosphate scaffolds for bone tissue engineering: in vitro alendronate release behavior and local delivery effect on in vivo osteogenesis. ACS Appl Mater Interfaces. 2014; 6(13):9955-65. PMC: 4095936. DOI: 10.1021/am501048n. View

3.
Kim S, Shin Y, Jung H, Hwang C, Baik H, Cha J . Precision and trueness of dental models manufactured with different 3-dimensional printing techniques. Am J Orthod Dentofacial Orthop. 2017; 153(1):144-153. DOI: 10.1016/j.ajodo.2017.05.025. View

4.
Sandhu H, Khan S, Suh D, Boden S . Demineralized bone matrix, bone morphogenetic proteins, and animal models of spine fusion: an overview. Eur Spine J. 2001; 10 Suppl 2:S122-31. PMC: 3611543. DOI: 10.1007/s005860100303. View

5.
Mirtchi A, Lemaitre J, Terao N . Calcium phosphate cements: study of the beta-tricalcium phosphate--monocalcium phosphate system. Biomaterials. 1989; 10(7):475-80. DOI: 10.1016/0142-9612(89)90089-6. View