Is it possible to 3D bioprint load-bearing bone implants? A critical review

被引:6
|
作者
Gupta, Tanmay [1 ,2 ]
Ghosh, Subrata Bandhu [1 ]
Bandyopadhyay-Ghosh, Sanchita [1 ]
Sain, Mohini [2 ]
机构
[1] Manipal Univ Jaipur, Engn Biomed Mat Res & Innovat Ctr EnBioMatR, Dept Mech Engn, Jaipur, Rajasthan, India
[2] Univ Toronto, Dept Mech & Ind Engn, Toronto, ON, Canada
关键词
calcium phosphate cement; 3D bioprinting; biofabrication; 3D printing; bone tissue engineering; load bearing scaffolds; MAGNESIUM PHOSPHATE CEMENT; FLUORCANASITE GLASS-CERAMICS; BIPHASIC CALCIUM-PHOSPHATE; IN-VIVO DEGRADATION; MECHANICAL-PROPERTIES; OSTEOCLASTIC RESORPTION; ORTHOPEDIC APPLICATIONS; SURFACE MODIFICATION; SCAFFOLDS; FABRICATION;
D O I
10.1088/1758-5090/acf6e1
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Rehabilitative capabilities of any tissue engineered scaffold rely primarily on the triad of (i) biomechanical properties such as mechanical properties and architecture, (ii) chemical behavior such as regulation of cytokine expression, and (iii) cellular response modulation (including their recruitment and differentiation). The closer the implant can mimic the native tissue, the better it can rehabilitate the damage therein. Among the available fabrication techniques, only 3D bioprinting (3DBP) can satisfactorily replicate the inherent heterogeneity of the host tissue. However, 3DBP scaffolds typically suffer from poor mechanical properties, thereby, driving the increased research interest in development of load-bearing 3DBP orthopedic scaffolds in recent years. Typically, these scaffolds involve multi-material 3D printing, comprising of at-least one bioink and a load-bearing ink; such that mechanical and biological requirements of the biomaterials are decoupled. Ensuring high cellular survivability and good mechanical properties are of key concerns in all these studies. 3DBP of such scaffolds is in early developmental stages, and research data from only a handful of preliminary animal studies are available, owing to limitations in print-capabilities and restrictive materials library. This article presents a topically focused review of the state-of-the-art, while highlighting aspects like available 3DBP techniques; biomaterials' printability; mechanical and degradation behavior; and their overall bone-tissue rehabilitative efficacy. This collection amalgamates and critically analyses the research aimed at 3DBP of load-bearing scaffolds for fulfilling demands of personalized-medicine. We highlight the recent-advances in 3DBP techniques employing thermoplastics and phosphate-cements for load-bearing applications. Finally, we provide an outlook for possible future perspectives of 3DBP for load-bearing orthopedic applications. Overall, the article creates ample foundation for future research, as it gathers the latest and ongoing research that scientists could utilize.
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页数:26
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