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Dr. Mohamed Frahat Foda Ali :: Publications:

Title:
Carbon-Dot and Quantum-Dot-Coated Dual-Emission Core–Satellite Silica Nanoparticles for Ratiometric Intracellular Cu2+ Imaging
Authors: Chenchen Zou, Mohamed Frahat Foda, Xuecai Tan, Kang Shao, Long Wu, Zhicheng Lu, Hagar Shendy Bahlol, Heyou Han
Year: 2016
Keywords: Not Available
Journal: Analytical Chemistry
Volume: 88
Issue: 14
Pages: 7395-7403
Publisher: American Chemical Society
Local/International: International
Paper Link:
Full paper Mohamed Frahat Foda Ali_Foda5.pdf
Supplementary materials Not Available
Abstract:

Copper (Cu2+) is physiologically essential, but excessive Cu2+ may cause potential risk to plants and animals due to the bioaccumulative properties. Hence, sensitive recognition is crucial to avoid overintake of Cu2+, and visual recognition is more favored for practical application. In this work, a dual-emission ratiometric fluorescent nanoprobe was developed possessing the required intensity ratio, which can facilitate the sensitive identification of Cu2+ by the naked eye. The probe hybridizes two fluorescence nanodots (quantum dots (QDs) and carbon dots (CDs)). Although both of them can be viable fluorescence probes for metal ion detection, rarely research has coupled this two different kinds of fluorescence material in one nanosensor to fabricate a selectively ratiometric fluorescence probe for intracellular imaging. The red emitting CdTe/CdS QDs were capped around the silica microsphere to serve as the response signal label, and the blue-emitting CDs, which is insensitive to the analyte, were covalently attached to the QDs surface to act as the reference signal. This core–satellite hybrid sphere not only improves the stability and brightness of QDs significantly but also decreases the cytotoxicity toward HeLa cells tremendously. Moreover, the Cu2+ could quench the QDs emission effectively but have no ability for reduction of the CDs emission. Accordingly, a simple, efficient, and precise method for tracing Cu2+ was proposed. The increase of Cu2+ concentration in the series of 0–3 × 10–6 M was in accordance with linearly decrease of the F650/F425 ratio. As for practical application, this nanosensor was utilized to the ratiometric fluorescence imaging of copper ions in HeLa cells.

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