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Cell Imaging Using Two-Photon Excited CdS Fluorescent Quantum Dots Working within the Biological Window

DOI:10.3390/nano9030369 期刊:Nanomaterials 出版年份:2019 更新时间:2025-11-21 11:24:58
摘要: In recent years, two-photon excited semiconductor quantum dots (QDs) have been the subject of intense investigation due to their long excitation wavelength which helps to achieve deeper penetration and higher image resolution in optical bioimaging. In this paper, water-soluble CdS QDs were synthesized using a hydrothermal method and applied to human liver hepatocellular carcinoma (HepG2) cells. The first-principles calculation suggested that the S-rich defected structure contributes to a narrower band gap compared to the pristine structure. The resulting fluorescence wavelength was significantly red shifted, which was attributed to the deep defect states emission. The large Stokes shifts (> 200 nm) of the QDs can eliminate the possible cross-talk between the excitation light and the emission light. Two-photon induced red fluorescence emission can avoid overlapping with the autofluorescence emission of biological samples. The uptake and cell viability measurements of the HepG2 cells showed a good biocompatibility and a low toxicity of CdS QDs. Two-photon excited scanning microscopy images revealed that the HepG2 cells incubated with CdS QDs emitted bright red upconversion fluorescence and the fluorescence brightness was 38.2 times of that of the control group. These results support CdS QDs as a good candidate for application in cellular imaging.
作者: Nannan Zhang,Xiao Liu,Zhongchao Wei,Haiying Liu,Jie Peng,Liya Zhou,Hongmei Li,Haihua Fan
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Investigating the application of water-soluble CdS quantum dots in two-photon fluorescence bioimaging for deeper penetration and higher image resolution.

The water-soluble CdS QDs synthesized in this study exhibit excellent properties for two-photon fluorescence bioimaging, including high brightness, good biocompatibility, and low toxicity. The QDs' ability to emit red fluorescence under two-photon excitation makes them suitable for deep tissue imaging, avoiding autofluorescence interference.

The study is limited by the potential toxicity of CdS QDs at higher concentrations and the need for further optimization of the QDs for in vivo applications.

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