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人指甲碳化:制备具有高发光性能和细胞增殖/迁移性能的多功能氮硫共掺杂碳纳米点的可持续途径。

Carbonization of Human Fingernails: Toward the Sustainable Production of Multifunctional Nitrogen and Sulfur Codoped Carbon Nanodots with Highly Luminescent Probing and Cell Proliferative/Migration Properties.

出版信息

ACS Appl Mater Interfaces. 2018 May 9;10(18):16024-16032. doi: 10.1021/acsami.8b03263. Epub 2018 Apr 26.

Abstract

A simple yet effective method is employed to prepare multifunctional fluorescent carbon nanodots (CNDs) from human fingernails. The results demonstrate that the CNDs have excellent optical properties and a quantum yield of 81%, which is attributed to the intrinsic composition of the precursor material itself. The CNDs are used to develop an ultrasensitive fluorescent probe for the detection of hexavalent chromium (limit of detection: 0.3 nM) via a combined inner-filter and static mechanism. Moreover, the toxicity of the CNDs over four epithelial cell lines is assessed. A negligible toxicity is induced on the three of the cell lines, whereas an increase in HEK-293 cell viability is demonstrated, granting cell proliferation properties to the as-synthesized CNDs. According to cell cycle analysis, cell proliferation is achieved by enhancing the transition of cells from the S phase to the G2/M one. Interestingly, CNDs are found to significantly promote cell migration, maybe because of their free-radical scavenging ability, making the CNDs suitable for wound healing applications. In addition, relevant experiments have revealed the blood compatibility of the CNDs. Finally, the CNDs were found suitable for cell imaging applications, and all of the aforementioned merits make it possible for them to be used for extraordinary, more advanced biological applications.

摘要

一种简单而有效的方法被用于从人指甲制备多功能荧光碳纳米点(CNDs)。结果表明,CNDs 具有优异的光学性质和 81%的量子产率,这归因于前体材料本身的固有组成。CNDs 被用于通过内滤和静态机制联合开发用于检测六价铬的超灵敏荧光探针(检测限:0.3 nM)。此外,还评估了 CNDs 对四种上皮细胞系的毒性。在三种细胞系中诱导出可忽略的毒性,而证明了 HEK-293 细胞活力增加,赋予合成的 CNDs细胞增殖特性。根据细胞周期分析,细胞增殖是通过增强细胞从 S 期到 G2/M 期的过渡来实现的。有趣的是,发现 CNDs 可显著促进细胞迁移,可能是因为它们具有清除自由基的能力,使 CNDs 适合用于伤口愈合应用。此外,相关实验揭示了 CNDs 的血液相容性。最后,发现 CNDs 适合用于细胞成像应用,所有上述优点使得它们可用于非凡的、更先进的生物应用。

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