Tensile Strength of 3D Printing Scaffold Design Truncated Hexahedron for Tuberculosis Drug Delivery

Eka Yuliatin, D. Hikmawati, Aminatun, A. S. Budiatin, P. Widiyanti, Frazna Parastuti
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Abstract

Mechanical properties are important characteristics of scaffolds as biomaterials implant in tissue engineering. This study focused on the analysis of the tensile strength of the 3D printing scaffold with a geometric design of the truncated hexahedron unit with pore size variation and combinFive variations of pore size of the scaffold (600, 800, 1,000, 1,200, and 1,400 µm) were fabricated from Polylactide acid (PLA) filament using the Fused Deposition Modelling (FDM) method through an ordinary commercial 3D printer. The IBS paste was synthesized from hydroxyapatite (HA), gelatin, hydroxypropyl methylcellulose (HPMC), and streptomycin. The characterization performed in this study were the pore size test with a digital microscope, tensile strength, elongation test, porosity, and contact angle. The 3D printed scaffold formed micropores after injected with IBS paste from a range of 130-230 µm. The tensile test results showed that the tensile strength of the 3D printing scaffold increased after being injected with IBS paste. In addition, the elongation test also shows a positive trend with increasing values of elongation after injection of IBS paste. The contact angle test results indicated that the scaffold was hydrophilic. From those characterizations, it could be concluded that 3D printing scaffold meet the criteria of scaffold for bone tissue engineering and drug carrier for tuberculosis.
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三维打印支架抗拉强度设计截断六面体结核药物输送
力学性能是支架作为组织工程生物植入材料的重要特性。本研究通过普通商用3D打印机,采用熔融沉积建模(FDM)方法,以聚乳酸(PLA)长丝为原料,制备了孔径分别为600、800、1000、1200和1400µm的五种孔径变化的3D打印支架,重点分析了截尾六面体单元几何设计与孔径变化组合的抗拉强度。以羟基磷灰石(HA)、明胶、羟丙基甲基纤维素(HPMC)和链霉素为原料合成IBS浆料。在本研究中进行的表征是用数码显微镜进行孔径测试,拉伸强度,伸长率测试,孔隙率和接触角。3D打印支架注入130 ~ 230µm范围内的IBS浆料后形成微孔。拉伸试验结果表明,注入IBS浆料后,3D打印支架的抗拉强度有所提高。此外,随着IBS膏体注入后延伸率的增加,延伸率试验也呈现出正趋势。接触角测试结果表明,支架具有亲水性。由此可见,3D打印支架符合骨组织工程支架和结核病药物载体的标准。
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