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Role of ZnS shell on stability, cytotoxicity and photocytotoxicity of water-soluble CdSe semiconductor quantum dots surface modified with glutathione

机译:ZnS壳对谷胱甘肽修饰的水溶性CdSe半导体量子点稳定性,细胞毒性和光细胞毒性的作用

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Biomedical applications of quantum dots (QDs) have become a subject of a considerable concern in the past few decades. The present study examines the stability and cytotoxicity of two QDs systems in cell culture medium in the presence and absence of a thin layer of ZnS shell. The two systems were built from core, CdSe QDs, surface modified with glutathione (GSH), named CdSe~GSH and CdSe/ZnS~GSH. Our results demonstrated that 0.7 nm layer of ZnS shell played a significant role in the stability of CdSe/ZnS~GSH QDs in supplemented cell culture medium (RPMI). Also, a significant improvement in the physicochemical properties of the core CdSe QDs was shown by maintaining their spectroscopic characteristics in RPMI medium due to the wide band gap of ZnS shell. Both systems showed insignificant reduction in cell viability of HFB-4 or MCF-7 cell lines in the dark which was attributed to the effective GSH coating. Following photoirradiation with low laser power (irradiance 10 mW cm~(-2)), CdSe~GSH QDs showed a significant decrease in cell viability after 60 min irradiation which may result from detachment of GSH molecules. Under the same irradiation condition, CdSe/ZnS~GSH QDs showed insignificant decrease in cell viability or after 2 h incubation from laser irradiation which was attributed to the strong binding between ZnS and GSH coatings. It can be concluded that the stability of CdSe core QDs was significantly improved in cell culture medium by encapsulation with a thin layer of ZnS shell whereas their cytotoxicity and photo-cytotoxicity are highly dependent on surface modification.
机译:在过去的几十年中,量子点(QDs)的生物医学应用已成为人们相当关注的主题。本研究研究了在存在和不存在ZnS壳薄层的情况下细胞培养基中两个QDs系统的稳定性和细胞毒性。这两个系统是由以谷胱甘肽(GSH)表面修饰的CdSe量子点(CdSe QDs)命名为CdSe〜GSH和CdSe / ZnS〜GSH。我们的结果表明,在补充的细胞培养基(RPMI)中,ZnS壳的0.7 nm层对CdSe / ZnS〜GSH QD的稳定性起着重要作用。此外,由于ZnS壳的宽带隙,在RPMI介质中保持其CdSe量子点的光谱特性,从而显示了其核心理化性质的显着改善。在黑暗中,两个系统均显示出HFB-4或MCF-7细胞系的细胞活力无明显降低,这归因于有效的GSH涂层。用低激光功率(辐照度10 mW cm〜(-2))进行光辐照后,CdSe〜GSH QDs辐照60分钟后细胞活力显着下降,这可能是由于GSH分子的脱落所致。在相同的辐照条件下,CdSe / ZnS〜GSH QDs的细胞活力或经激光辐照2 h后细胞活力均无明显下降,这归因于ZnS与GSH涂层之间的牢固结合。可以得出结论,通过用一层薄薄的ZnS壳包封,CdSe核心QD在细胞培养基中的稳定性得到了显着提高,而它们的细胞毒性和光细胞毒性高度依赖于表面修饰。

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