Wang Lei, Yang Chuncheng, Sun Changning, Yan Xiaolong, He Jiankang, Shi Changquan, Liu Chaozong, Li Dichen, Jiang Tao, Huang Lijun
Department of Thoracic Surgery, Tangdu Hospital, Air Force Medical University, 710038, Xi'an, Shaanxi, China.
State Key Laboratory for Manufacturing System Engineering, Xi'an Jiaotong University, 710054, Xi'an, Shaanxi, China.
Int J Bioprint. 2022 Sep 9;8(4):615. doi: 10.18063/ijb.v8i4.615. eCollection 2022.
Three-dimensional printing (3DP) technology is suitable for manufacturing personalized orthopedic implants for reconstruction surgery. Compared with traditional titanium, polyether-ether-ketone (PEEK) is the ideal material for 3DP orthopedic implants due to its various advantages, including thermoplasticity, thermal stability, high chemical stability, and radiolucency suitable elastic modulus. However, it is challenging to develop a well-designed method and manufacturing technique to meet the clinical needs because it requires elaborate details and interplays with clinical work. Furthermore, establishing surgical standards for new implants requires many clinical cases and an accumulation of surgical experience. Thus, there are few case reports on using 3DP PEEK implants in clinical practice. Herein, we formed a team with a lot of engineers, scientists, and doctors and conducted a series of studies on the 3DP PEEK implants for chest wall reconstruction. First, the thoracic surgeons sort out the specific types of chest wall defects. Then, the engineers designed the shape of the implant and performed finite element analysis for every implant. To meet the clinical needs and mechanical requirements of implants, we developed a new fused deposition modeling technology to make personalized PEEK implants. Overall, the thoracic surgeons have used 114 personalized 3DP PEEK implants to reconstruct the chest wall defect and further established the surgical standards of the implants as part of the Chinese clinical guidelines. The surface modification technique and composite process are developed to overcome the new clinical problems of implant-related complications after surgery. Finally, the major challenges and possible solutions to translating 3DP PEEK implants into a mature and prevalent clinical product are discussed in the paper.
三维打印(3DP)技术适用于制造用于重建手术的个性化骨科植入物。与传统钛相比,聚醚醚酮(PEEK)因其具有热塑性、热稳定性、高化学稳定性以及射线可透过性和合适的弹性模量等多种优势,是3DP骨科植入物的理想材料。然而,开发一种精心设计的方法和制造技术以满足临床需求具有挑战性,因为这需要精细的细节并与临床工作相互配合。此外,为新植入物建立手术标准需要大量临床病例和手术经验的积累。因此,在临床实践中使用3DP PEEK植入物的病例报告很少。在此,我们组建了一个由众多工程师、科学家和医生组成的团队,对用于胸壁重建的3DP PEEK植入物进行了一系列研究。首先,胸外科医生梳理胸壁缺损的具体类型。然后,工程师设计植入物的形状并对每个植入物进行有限元分析。为满足植入物的临床需求和力学要求,我们开发了一种新的熔融沉积建模技术来制造个性化PEEK植入物。总体而言,胸外科医生已使用114个个性化3DP PEEK植入物重建胸壁缺损,并进一步确立了该植入物的手术标准,作为中国临床指南的一部分。开发了表面改性技术和复合工艺以克服手术后与植入物相关并发症的新临床问题。最后,本文讨论了将3DP PEEK植入物转化为成熟且普遍应用的临床产品的主要挑战和可能的解决方案。