Mechanical Engineering Department, Thapar Institute of Engineering and Technology, Patiala, 147004, Punjab, India.
Mechanical Engineering Department, Thapar Institute of Engineering and Technology, Patiala, 147004, Punjab, India.
J Mech Behav Biomed Mater. 2023 Jul;143:105929. doi: 10.1016/j.jmbbm.2023.105929. Epub 2023 May 28.
The metallic biomaterials have been proclaimed to exhibit stress shielding with discharge of toxic ions, leading to polymeric implants attracting interest in 3D Printing domain. In this study, Poly Lactic Acid based 336 bone plates are fabricated using Fused Filament Fabrication with printing parameters being varied. Polydopamine, being biocompatible, is deposited on fabricated bone plates at varying submersion time, shaker speed and coating solutions concentration. The study involves witnessing the effect of printing and coating parameters on biological behavior of bone plates upon preservation in Simulated Body Fluid and Hank's Balanced Salt Solution. The findings propose the close relation of degradation with apatite growth. The highest degradation rate with significant reduction in mechanical characteristics are shown by uncoated bone plates. These bone plates have porous structure at 20% infill density, 0.5 mm layer height, 0.4 mm wall thickness and 100 mm/s print speed which could result in complete degradation with partial healing of bone fracture. The study suggests the preservation of bone plates coated at 120 h' submersion time and 120 RPM shaker speed in 3 mg/ml concentrated solution which showed lower apatite formation. Thus, the coating would slow down degradation of PLA bone plates, resulting in complete healing of bone fracture.
金属生物材料已被宣布表现出应力屏蔽和有毒离子的释放,导致聚合物植入物在 3D 打印领域引起关注。在这项研究中,使用熔融沉积制造技术制造了基于聚乳酸的 336 骨板,并改变了打印参数。聚多巴胺具有生物相容性,在不同的浸泡时间、摇床速度和涂层溶液浓度下沉积在制造的骨板上。该研究涉及观察打印和涂层参数对保存在模拟体液和汉克平衡盐溶液中的骨板生物行为的影响。研究结果表明,降解与磷灰石生长密切相关。未涂层的骨板表现出最高的降解速率和显著降低的机械特性。这些骨板在 20%的填充密度、0.5 毫米的层厚、0.4 毫米的壁厚和 100 毫米/秒的打印速度下具有多孔结构,可能导致完全降解和部分骨折愈合。研究表明,在 3 毫克/毫升的浓缩溶液中浸泡 120 小时和以 120 RPM 的摇床速度保存的骨板涂层可以减少磷灰石的形成。因此,涂层可以减缓 PLA 骨板的降解,从而实现骨折的完全愈合。