Basgul Cemile, Spece Hannah, Sharma Neha, Thieringer Florian M, Kurtz Steven M
Implant Research Core, School of Biomedical Engineering, Science and Health Systems, Drexel University, Philadelphia, Pennsylvania, USA.
Medical Additive Manufacturing Research Group, Department of Biomedical Engineering, University of Basel, Allschwil, Switzerland.
J Biomed Mater Res B Appl Biomater. 2021 Nov;109(11):1924-1941. doi: 10.1002/jbm.b.34845. Epub 2021 Apr 15.
Additive manufacturing (AM) of high temperature polymers, specifically polyaryletherketones (PAEK), is gaining significant attention for medical implant applications. As 3D printing systems evolve toward point of care manufacturing, research on this topic continues to expand. Specific regulatory guidance is being developed for the safe management of 3D printing systems in a hospital environment. PAEK implants can benefit from many advantages of AM such as design freedom, material and antibacterial drug incorporation, and enhanced bioactivity provided by cancellous bone-like porous designs. In addition to AM PAEK bioactivity, the biomechanical strength of 3D printed implants is crucial to their performance and thus widely studied. In this review, we discuss the printing conditions that have been investigated so far for additively manufactured PAEK implant applications. The effect of processing parameters on the biomechanical strength of implants is summarized, and the bioactivity of PAEKs, along with material and drug incorporation, is also covered in detail. Finally, the therapeutic areas in which 3D printed PAEK implants are investigated and utilized are reviewed.
高温聚合物,特别是聚芳醚酮(PAEK)的增材制造(AM)在医疗植入物应用中受到了广泛关注。随着3D打印系统朝着床边制造方向发展,关于这一主题的研究不断扩展。针对医院环境中3D打印系统的安全管理,正在制定具体的监管指南。PAEK植入物可受益于增材制造的诸多优势,如设计自由度、材料和抗菌药物的结合,以及松质骨样多孔设计所提供的增强生物活性。除了增材制造PAEK的生物活性外,3D打印植入物的生物力学强度对其性能至关重要,因此受到广泛研究。在本综述中,我们讨论了迄今为止针对增材制造PAEK植入物应用所研究的打印条件。总结了加工参数对植入物生物力学强度的影响,并详细介绍了PAEK的生物活性以及材料和药物的结合情况。最后,对研究和使用3D打印PAEK植入物的治疗领域进行了综述。