TY - JOUR
T1 - A Review of 3D Polymeric Scaffolds for Bone Tissue Engineering
T2 - Principles, Fabrication Techniques, Immunomodulatory Roles, and Challenges
AU - Abdelaziz, Ahmed G.
AU - Nageh, Hassan
AU - Abdo, Sara M.
AU - Abdalla, Mohga S.
AU - Amer, Asmaa A.
AU - Abdal-hay, Abdalla
AU - Barhoum, Ahmed
N1 - Publisher Copyright:
© 2023 by the authors.
PY - 2023/2
Y1 - 2023/2
N2 - Over the last few years, biopolymers have attracted great interest in tissue engineering and regenerative medicine due to the great diversity of their chemical, mechanical, and physical properties for the fabrication of 3D scaffolds. This review is devoted to recent advances in synthetic and natural polymeric 3D scaffolds for bone tissue engineering (BTE) and regenerative therapies. The review comprehensively discusses the implications of biological macromolecules, structure, and composition of polymeric scaffolds used in BTE. Various approaches to fabricating 3D BTE scaffolds are discussed, including solvent casting and particle leaching, freeze-drying, thermally induced phase separation, gas foaming, electrospinning, and sol–gel techniques. Rapid prototyping technologies such as stereolithography, fused deposition modeling, selective laser sintering, and 3D bioprinting are also covered. The immunomodulatory roles of polymeric scaffolds utilized for BTE applications are discussed. In addition, the features and challenges of 3D polymer scaffolds fabricated using advanced additive manufacturing technologies (rapid prototyping) are addressed and compared to conventional subtractive manufacturing techniques. Finally, the challenges of applying scaffold-based BTE treatments in practice are discussed in-depth.
AB - Over the last few years, biopolymers have attracted great interest in tissue engineering and regenerative medicine due to the great diversity of their chemical, mechanical, and physical properties for the fabrication of 3D scaffolds. This review is devoted to recent advances in synthetic and natural polymeric 3D scaffolds for bone tissue engineering (BTE) and regenerative therapies. The review comprehensively discusses the implications of biological macromolecules, structure, and composition of polymeric scaffolds used in BTE. Various approaches to fabricating 3D BTE scaffolds are discussed, including solvent casting and particle leaching, freeze-drying, thermally induced phase separation, gas foaming, electrospinning, and sol–gel techniques. Rapid prototyping technologies such as stereolithography, fused deposition modeling, selective laser sintering, and 3D bioprinting are also covered. The immunomodulatory roles of polymeric scaffolds utilized for BTE applications are discussed. In addition, the features and challenges of 3D polymer scaffolds fabricated using advanced additive manufacturing technologies (rapid prototyping) are addressed and compared to conventional subtractive manufacturing techniques. Finally, the challenges of applying scaffold-based BTE treatments in practice are discussed in-depth.
KW - additive manufacturing
KW - biopolymers
KW - customized therapy 3D scaffolds
KW - nanofabrication techniques
KW - rapid prototyping
KW - tissue engineering and regenerative medicine
UR - https://www.scopus.com/pages/publications/85149036252
U2 - 10.3390/bioengineering10020204
DO - 10.3390/bioengineering10020204
M3 - Review article
AN - SCOPUS:85149036252
SN - 2306-5354
VL - 10
JO - Bioengineering
JF - Bioengineering
IS - 2
M1 - 204
ER -