| Literature DB >> 32048821 |
Anli Xu1,2, Peng He1,2, Caichao Ye3, Zhiduo Liu4,2, Bingli Gu5, Bo Gao5, Yongqiang Li1,2, Hui Dong1,2, Da Chen5, Gang Wang5, Siwei Yang1,2, Guqiao Ding1,2.
Abstract
The evaluation of intracellular reactive oxygen species (ROS) would greatly deepen the understanding of cell metabolism/proliferation and tumor detection. However, current long-acting level tracking techniques for intracellular ROS remain unsuited to practical applications. To solve this problem, we synthesized cyclotriphosphazene-doped graphene quantum dots (C-GQDs) whose quantum yield is highly sensitive to ROS (increased by 400% from 0.12 to 0.63). Electron cloud polarization of oxidized cyclotriphosphazene rings in C-GQDs is confirmed to account for this novel optical property by density functional theory calculations and experimental results. In combination with excellent biological stability, C-GQDs achieve a long-acting evaluation of intracellular ROS level (more than 72 h) with an accuracy of 98.3%. In addition, recognition rates exceeding 90% are demonstrated to be feasible for eight kinds of tumor cell lines cultured with C-GQDs, which can also be expanded to in vivo detection. C-GQDs also show a high recognition rate (82.33%) and sensitivity (79.65%) for tumor cells in blood samples.Entities:
Keywords: CTC; graphene quantum dots; intracellular reactive oxygen species; photoluminescence; tumor detection
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Year: 2020 PMID: 32048821 DOI: 10.1021/acsami.9b20434
Source DB: PubMed Journal: ACS Appl Mater Interfaces ISSN: 1944-8244 Impact factor: 9.229