Moiduddin Khaja, Mian Syed Hammad, Umer Usama, Alkhalefah Hisham, Ahmed Faraz, Hashmi Faraz Hussain
Advanced Manufacturing Institute, King Saud University, Riyadh 11421, Saudi Arabia.
Department of Mechanical Engineering, College of Engineering, King Saud University, Riyadh 11421, Saudi Arabia.
Polymers (Basel). 2023 Feb 10;15(4):886. doi: 10.3390/polym15040886.
The reconstruction of craniomaxillofacial deformities, especially zygomatic bone repair, can be exigent due to the complex anatomical structure and the sensitivity of the crucial organs involved. The need to reconstruct the zygomatic bone in the most precise way is of crucial importance for enhancing the patient outcomes and health care-related quality of life (HRQL). Autogenous bone grafts, despite being the gold standard, do not match bone forms, have limited donor sites and bone volume, and can induce substantial surgical site morbidity, which may lead to adverse outcomes. The goal of this study is to provide an integrated approach that includes various processes, from patient scanning to implant manufacture, for the restoration of zygomatic bone abnormalities utilizing Polyetheretherketone (PEEK) material, while retaining adequate aesthetic and facial symmetry. This study takes an integrated approach, including computer-aided implant design using the mirror reconstruction technique, investigating the biomechanical behavior of the implant under loading conditions, and carrying out a fitting accuracy analysis of the PEEK implant fabricated using state-of-the-art additive manufacturing technology. The findings of the biomechanical analysis results reveal the largest stress of approximately 0.89 MPa, which is relatively low in contrast to the material's yield strength and tensile strength. A high degree of sturdiness in the implant design is provided by the maximum value of strain and deformation, which is also relatively low at roughly 2.2 × 10 and 14 µm. This emphasizes the implant's capability for load resistance and safety under heavy loading. The 3D-printed PEEK implant observed a maximum deviation of 0.4810 mm in the outside direction, suggesting that the aesthetic result or the fitting precision is adequate. The 3D-printed PEEK implant has the potential to supplant the zygoma bone in cases of severe zygomatic reconstructive deformities, while improving the fit, stability, and strength of the implant.
由于颅颌面畸形的解剖结构复杂且涉及重要器官的敏感性,颅颌面畸形的重建,尤其是颧骨修复,可能非常棘手。以最精确的方式重建颧骨对于改善患者预后和与医疗保健相关的生活质量(HRQL)至关重要。自体骨移植尽管是金标准,但无法匹配骨形态,供体部位和骨量有限,并且会引发严重的手术部位并发症,这可能导致不良后果。本研究的目的是提供一种综合方法,包括从患者扫描到植入物制造的各种过程,以利用聚醚醚酮(PEEK)材料修复颧骨异常,同时保持足够的美观度和面部对称性。本研究采用综合方法,包括使用镜像重建技术进行计算机辅助植入物设计、研究植入物在加载条件下的生物力学行为,以及对使用最先进的增材制造技术制造的PEEK植入物进行拟合精度分析。生物力学分析结果显示,最大应力约为0.89MPa,与材料的屈服强度和拉伸强度相比相对较低。应变和变形的最大值也相对较低,分别约为2.2×10和14µm,这为植入物设计提供了高度的坚固性。这强调了植入物在重载下的抗负载能力和安全性。观察到3D打印的PEEK植入物在外部方向上的最大偏差为0.4810mm,这表明美观效果或拟合精度是足够的。3D打印的PEEK植入物有可能在严重颧骨重建畸形的情况下替代颧骨,同时提高植入物的拟合度、稳定性和强度。