Fabrication Strategies for Bioceramic Scaffolds in Bone Tissue Engineering with Generative Design Applications

Author:

Cinici Bilal123,Yaba Sule3,Kurt Mustafa1,Yalcin Huseyin C.456ORCID,Duta Liviu7ORCID,Gunduz Oguzhan28ORCID

Affiliation:

1. Department of Mechanical Engineering, Faculty of Technology, Marmara University, Istanbul 34890, Turkey

2. Center for Nanotechnology & Biomaterials Application and Research (NBUAM), Marmara University, Istanbul 34890, Turkey

3. AYEM Innovation Anonim Sirketi, Cube Incubation Center, Technopark Istanbul, Istanbul 34890, Turkey

4. Biomedical Research Center, Qatar University, Doha 2713, Qatar

5. Department of Biomedical Science, College of Health Sciences, QU Health, Qatar University, Doha 2713, Qatar

6. Department of Mechanical and Industrial Engineering, Qatar University, Doha 2713, Qatar

7. Lasers Department, National Institute for Lasers, Plasma and Radiation Physics, 077125 Magurele, Romania

8. Department of Metallurgical and Materials Engineering, Faculty of Technology, Marmara University, Istanbul 34890, Turkey

Abstract

The aim of this study is to provide an overview of the current state-of-the-art in the fabrication of bioceramic scaffolds for bone tissue engineering, with an emphasis on the use of three-dimensional (3D) technologies coupled with generative design principles. The field of modern medicine has witnessed remarkable advancements and continuous innovation in recent decades, driven by a relentless desire to improve patient outcomes and quality of life. Central to this progress is the field of tissue engineering, which holds immense promise for regenerative medicine applications. Scaffolds are integral to tissue engineering and serve as 3D frameworks that support cell attachment, proliferation, and differentiation. A wide array of materials has been explored for the fabrication of scaffolds, including bioceramics (i.e., hydroxyapatite, beta-tricalcium phosphate, bioglasses) and bioceramic–polymer composites, each offering unique properties and functionalities tailored to specific applications. Several fabrication methods, such as thermal-induced phase separation, electrospinning, freeze-drying, gas foaming, particle leaching/solvent casting, fused deposition modeling, 3D printing, stereolithography and selective laser sintering, will be introduced and thoroughly analyzed and discussed from the point of view of their unique characteristics, which have proven invaluable for obtaining bioceramic scaffolds. Moreover, by highlighting the important role of generative design in scaffold optimization, this review seeks to pave the way for the development of innovative strategies and personalized solutions to address significant gaps in the current literature, mainly related to complex bone defects in bone tissue engineering.

Publisher

MDPI AG

Reference189 articles.

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