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探究γ射线灭菌对化学改性氧化石墨烯增强HDPE/UHMWPE纳米复合材料及其磨损碎屑的氧化、结晶、滑动耐磨性和细胞相容性的影响。

Probing the Influence of γ-Sterilization on the Oxidation, Crystallization, Sliding Wear Resistance, and Cytocompatibility of Chemically Modified Graphene-Oxide-Reinforced HDPE/UHMWPE Nanocomposites and Wear Debris.

作者信息

Sharma Vidushi, Bose Suryasarathi, Kundu Biswanath, Bodhak Subhadip, Mitun Das, Balla Vamsi Krishna, Basu Bikramjit

机构信息

Laboratory for Biomaterials, Materials Research Center, Indian Institute of Science, Bangalore 560012, India.

Department of Materials Engineering, Indian Institute of Science, Bangalore 560012, India.

出版信息

ACS Biomater Sci Eng. 2020 Mar 9;6(3):1462-1475. doi: 10.1021/acsbiomaterials.9b01327. Epub 2020 Feb 28.

DOI:10.1021/acsbiomaterials.9b01327
PMID:33455381
Abstract

Osteolysis and aseptic loosening due to wear at the articulating interfaces of prosthetic joints are considered to be the key concerns for implant failure in load-bearing orthopedic applications. In an effort to reduce the wear and processing difficulties of ultrahigh-molecular-weight polyethylene (UHMWPE), our research group recently developed high-density polyethylene (HDPE)/UHMWPE nanocomposites with chemically modified graphene oxide (mGO). Considering the importance of sterilization, this work explores the influence of γ-ray dosage of 25 kGy on the clinically relevant performance-limiting properties of these newly developed hybrid nanocomposites in vitro. Importantly, this work also probes into the cytotoxic effects of the wear debris of different compositions and sizes on MC3T3 murine osteoblasts and human mesenchymal stem cells (hMSCs). In particular, γ-ray-sterilized 1 wt % mGO-reinforced HDPE/UHMWPE nanocomposites exhibit an improvement in the oxidation index (16%), free energy of immersion (-12.1 mN/m), surface polarity (5.0%), and hardness (42%). Consequently, such enhancements result in better tribological properties, especially coefficient of friction (+13%) and wear resistance, when compared with UHMWPE. A spectrum of analyses using transmission electron microscopy (TEM) and in vitro cytocompatibility assessment demonstrate that phagocytosable (0.5-4.5 μm) sterilized 1 mGO wear particles, when present in culture media at 5 mg/mL concentration, induce neither significant reduction in MC3T3 murine osteoblast and hMSC growth nor cell morphology phenotype, during 24, 48, and 72 h of incubation. Taken together, this study suggests that γ-ray-sterilized HDPE/UHMWPE/mGO nanocomposites can be utilized as promising articulating surfaces for total joint replacements.

摘要

由于假体关节的关节界面磨损导致的骨溶解和无菌性松动被认为是承重骨科应用中植入物失败的关键问题。为了减少超高分子量聚乙烯(UHMWPE)的磨损和加工困难,我们的研究小组最近开发了含有化学改性氧化石墨烯(mGO)的高密度聚乙烯(HDPE)/UHMWPE纳米复合材料。考虑到灭菌的重要性,这项工作探讨了25 kGy的γ射线剂量对这些新开发的混合纳米复合材料体外临床相关性能限制特性的影响。重要的是,这项工作还探究了不同组成和尺寸的磨损碎屑对MC3T3小鼠成骨细胞和人间充质干细胞(hMSCs)的细胞毒性作用。特别是,经γ射线灭菌的1 wt% mGO增强HDPE/UHMWPE纳米复合材料在氧化指数(提高16%)、浸入自由能(-12.1 mN/m)、表面极性(5.0%)和硬度(42%)方面表现出改善。因此,与UHMWPE相比,这些增强导致了更好的摩擦学性能,特别是摩擦系数(提高13%)和耐磨性。使用透射电子显微镜(TEM)的一系列分析和体外细胞相容性评估表明,当可吞噬的(0.5 - 4.5μm)灭菌1 mGO磨损颗粒以5 mg/mL的浓度存在于培养基中时,在24、48和72小时的孵育过程中,既不会导致MC3T3小鼠成骨细胞和hMSC生长的显著降低,也不会引起细胞形态表型的改变。综上所述,这项研究表明,经γ射线灭菌的HDPE/UHMWPE/mGO纳米复合材料可作为全关节置换有前景的关节表面材料。

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