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基于质量源于设计的 3D 打印骨假体和支架。

Application of quality by design for 3D printed bone prostheses and scaffolds.

机构信息

School of Engineering, Griffith University, Gold Coast, Queensland, Australia.

Molecular Cell Biomechanics Laboratory, University of California, Berkeley, California, United States of America.

出版信息

PLoS One. 2018 Apr 12;13(4):e0195291. doi: 10.1371/journal.pone.0195291. eCollection 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.

摘要

3D 打印是一种新兴的制造技术,最近已在医学领域用于开发定制的骨骼假体和支架。然而,要成功地将这项新技术应用于设计和制造领域,需要技术集成、多学科协同合作以及健全的质量管理框架。本研究的重点是后者。尽管近几十年来已经制定了许多综合质量框架来确保医疗器械的制造能够生产出可靠的产品,但这些框架都是基于标准化制造技术的传统背景。3D 打印技术的出现以及大规模定制的前景提供了巨大的市场机会,但也对负责管理和确保产品质量和安全的监管机构提出了严峻挑战。在 3D 打印骨骼假体和支架能够获得广泛应用之前,行业利益相关者(如监管机构、客户、医疗从业者、保险公司、律师和制造商)都需要高度确信定制制造能够达到与标准化制造相同的质量水平。采用质量源于设计(QbD)方法来定制 3D 打印假体有助于确保产品从一开始就正确设计和制造,避免错误。本文报告了 QbD 方法在 3D 打印定制骨骼假体和支架开发过程中的适应性。这是通过确定这些产品的关键质量属性,并对 3D 打印骨骼假体的不同设计和制造方法进行广泛审查来实现的。研究结果包括开发全面的设计和制造工艺流程图,以及与这些产品的设计和制造过程相关的分类风险。通过与专家进行广泛的系统文献综述和事后评估调查,评估了本文所建议的 QbD 框架的有效性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0fb8/5896968/9f83defe4bd9/pone.0195291.g001.jpg

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