Recent advances in 3D printing of biomaterials
Современные достижения в 3D-печати биоматериалов
2015-02-28
SCID: 54.1/n6bex35y
Discuss with AI
3D printingbiomaterialsbioprintingregenerative medicinetissue engineering
Figures from the paper
Abstract (AI)
3D Printing promises to produce complex biomedical devices according to computer design using patient-specific anatomical data. Since its initial use as pre-surgical visualization models and tooling molds, 3D Printing has slowly evolved to create one-of-a-kind devices, implants, scaffolds for tissue engineering, diagnostic platforms, and drug delivery systems. Fueled by the recent explosion in public interest and access to affordable printers, there is renewed interest to combine stem cells with custom 3D scaffolds for personalized regenerative medicine. Before 3D Printing can be used routinely for the regeneration of complex tissues (e.g. bone, cartilage, muscles, vessels, nerves in the craniomaxillofacial complex), and complex organs with intricate 3D microarchitecture (e.g. liver, lymphoid organs), several technological limitations must be addressed. In this review, the major materials and technology advances within the last five years for each of the common 3D Printing technologies (Three Dimensional Printing, Fused Deposition Modeling, Selective Laser Sintering, Stereolithography, and 3D Plotting/Direct-Write/Bioprinting) are described. Examples are highlighted to illustrate progress of each technology in tissue engineering, and key limitations are identified to motivate future research and advance this fascinating field of advanced manufacturing.
Key Findings
1
3D printing has evolved from producing visualization models and tooling molds to fabricating patient-specific devices, implants, tissue-engineering scaffolds, diagnostic platforms, and drug-delivery systems.
2
Examples demonstrate progress in applying these technologies to tissue engineering, while also highlighting unresolved barriers to routine regeneration of complex tissues and organs with intricate three-dimensional microarchitecture.
3
Further technological development is required to address current limitations before 3D printing can routinely regenerate structures such as bone, cartilage, muscle, vessels, nerves, liver, and lymphoid organs.
4
Recent advances increasingly combine stem cells with custom three-dimensional scaffolds, supporting personalized regenerative medicine applications.
5
The review surveys material and technology advances over the preceding five years across major approaches, including 3D printing, fused deposition modeling, selective laser sintering, stereolithography, and direct-write bioprinting.
Research Object
3D printing of biomaterials and biofabricated scaffolds/devices for biomedical applications
Research Subject
Recent material and technological advances, applications, and limitations of 3D-printing technologies for producing patient-specific biomedical devices, implants, scaffolds, and tissue-engineering constructs
Publication Details
Publication Date
2015-02-28
Journal
Publisher
ISSN
Open access PDF
Access Type
Author Information
Download PDF
Subscribe to digest
Cited by6
A Review of Vat Photopolymerization Technology: Materials, Applications, Challenges, and Future Trends of 3D Printing2021
Additive manufacturing technologies with emphasis on stereolithography 3D printing in pharmaceutical and medical applications: A review2023
Advancements in DLP 3D printing: High strength alumina toughened zirconia ceramics for biomedical applications2024
Three-dimensional Printing Technology: Patient-friendly and Time-saving Approach for Space Management in an Autistic Child in COVID-19 Times2024
Future of additive manufacturing: Overview of 4D and 3D printed smart and advanced materials and their applications2020
Polymers for 3D Printing and Customized Additive Manufacturing2017