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Application of quality by design for 3D printed bone prostheses and scaffolds
- Source :
- PLoS ONE, Vol 13, Iss 4, p e0195291 (2018), PLoS ONE
- Publication Year :
- 2018
- Publisher :
- Public Library of Science (PLoS), 2018.
-
Abstract
- 3D printing is an emergent manufacturing technology recently being applied in the medical field for the development of custom bone prostheses and scaffolds. However, successful industry transformation to this new design and manufacturing approach requires technology integration, concurrent multi-disciplinary collaboration, and a robust quality management framework. This latter change enabler is the focus of this study. While a number of comprehensive quality frameworks have been developed in recent decades to ensure that the manufacturing of medical devices produces reliable products, they are centred on the traditional context of standardised manufacturing techniques. The advent of 3D printing technologies and the prospects for mass customisation provides significant market opportunities, but also presents a serious challenge to regulatory bodies tasked with managing and assuring product quality and safety. Before 3D printing bone prostheses and scaffolds can gain traction, industry stakeholders, such as regulators, clients, medical practitioners, insurers, lawyers, and manufacturers, would all require a high degree of confidence that customised manufacturing can achieve the same quality outcomes as standardised manufacturing. A Quality by Design (QbD) approach to custom 3D printed prostheses can help to ensure that products are designed and manufactured correctly from the beginning without errors. This paper reports on the adaptation of the QbD approach for the development process of 3D printed custom bone prosthesis and scaffolds. This was achieved through the identification of the Critical Quality Attributes of such products, and an extensive review of different design and fabrication methods for 3D printed bone prostheses. Research outcomes include the development of a comprehensive design and fabrication process flow diagram, and categorised risks associated with the design and fabrication processes of such products. An extensive systematic literature review and post-hoc evaluation survey with experts was completed to evaluate the likely effectiveness of the herein suggested QbD framework.
- Subjects :
- 0209 industrial biotechnology
Quality management
Computer science
3D printing
Electronics engineering
lcsh:Medicine
02 engineering and technology
Engineering and technology
Diagnostic Radiology
020901 industrial engineering & automation
Medicine and Health Sciences
Biomechanics
lcsh:Science
Tomography
Prosthetics
Multidisciplinary
Tissue Scaffolds
Radiology and Imaging
Bone and Joint Mechanics
021001 nanoscience & nanotechnology
Manufacturing engineering
Bone Imaging
Printing, Three-Dimensional
0210 nano-technology
Critical quality attributes
Research Article
Biotechnology
Quality Control
Imaging Techniques
Process flow diagram
Neuroimaging
Surgical and Invasive Medical Procedures
Research and Analysis Methods
Prosthesis Design
Risk Assessment
Quality by Design
Bone and Bones
Diagnostic Medicine
Technology integration
business.industry
lcsh:R
Biology and Life Sciences
Sterilization
Computed Axial Tomography
Assistive Technologies
Manufacturing Processes
Enabling
Medical Devices and Equipment
lcsh:Q
business
Neuroscience
Subjects
Details
- Language :
- English
- ISSN :
- 19326203
- Volume :
- 13
- Issue :
- 4
- Database :
- OpenAIRE
- Journal :
- PLoS ONE
- Accession number :
- edsair.doi.dedup.....38a42936eed044117837d4e4be2687e3