关于添加型聚乳酸-氧化锌纳米复合材料的生物降解性、生物相容性和抗菌特性的综合研究

Wei Juene Chong , Paul Wright , Dejana Pejak Simunec , Srinivasan Jayashree , Winston Liew , Chad Heazlewood , Adrian Trinchi , Ilias (Louis) Kyratzis , Yuncang Li , Shirley Shen , Antonella Sola , Cuie Wen
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摘要

在三维打印聚乳酸(PLA)长丝中添加氧化锌(ZnO)纳米填料进行材料挤压(MEX)增材制造(熔融长丝制造,FFF,又称熔融沉积模型,FDM),有可能制造出具有嵌入式抗菌功能的生物医学设备。这项工作研究了三维打印聚乳酸-氧化锌纳米复合材料的生物特性,主要是生物可降解性、抗菌活性和细胞毒性,其中含有 1 wt% 至 5 wt% 的未处理或硅烷处理填料。该研究表明,填料的浓度和表面特性控制着基质降解率,而基质降解率直接影响着 ZnO 和 Zn2+ 的释放率,进而影响着纳米复合材料的抗菌性能。所有纳米复合材料对革兰氏阳性菌(金黄色葡萄球菌)和革兰氏阴性菌(大肠杆菌)均表现出优异的抗菌性能(细菌减少 99%)。对人体免疫THP-1细胞的潜在细胞毒性作用只有在填料含量最高(5 wt%)时才明显,而填料含量为< 5 wt%的纳米复合材料在暴露7天后无细胞毒性。本研究中制备的三维打印聚乳酸-氧化锌纳米复合材料具有临床应用潜力,其中填料负载量为 < 2 wt%的纳米复合材料是最合适的候选材料,因为它们具有优异的抗菌性能,同时显示出与原始聚乳酸相当的生物相容性。
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A comprehensive study on the biodegradability, biocompatibility, and antibacterial properties of additively manufactured PLA-ZnO nanocomposites
The addition of zinc oxide (ZnO) nanofillers to 3D printable poly(lactic acid) (PLA) filaments for material extrusion (MEX) additive manufacturing (fused filament fabrication, FFF, a.k.a. fused deposition modelling, FDM) has the potential to enable the fabrication of biomedical devices with embedded antibacterial functionality. This work investigates the biological properties, mainly the biodegradability, antibacterial activity, and cytotoxicity of 3D printed PLA-ZnO nanocomposites containing between 1 wt% to 5 wt% of either untreated or silane-treated filler. This study demonstrated that the concentration and surface properties of the filler control the matrix degradation rate, which directly influences the release rate of ZnO and Zn2+, which in turn governs the antibacterial properties of the nanocomposites. All nanocomposites showed excellent antibacterial properties (> 99% reduction in bacteria) against both gram-positive (Staphylococcus aureus) and gram-negative (Escherichia coli) strains. Potential cytotoxic effects against human immune THP-1 cells were only evident at the highest filler loading (5 wt%), whereas nanocomposites with < 5 wt% filler loading were non-cytotoxic after 7 days of exposure. The 3D printed PLA-ZnO nanocomposites produced in this study show potential for use in clinical settings, with nanocomposites having filler loadings of < 2 wt% being the most appropriate candidates due to their excellent antibacterial properties while showing comparable biocompatibility to pristine PLA.
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