Ultrasmall Magnetically Engineered Ag2Se Quantum Dots for Instant Efficient Labeling and Whole-Body High-Resolution Multimodal Real-Time Tracking of Cell-Derived Microvesicles

Cell-derived microvesicles (MVs) are natural carriers that can transport biological molecules between cells, which are expected to be promising delivery vehicles for therapeutic purposes. Strategies to label MVs are very important for investigation and application of MVs. Herein, ultrasmall Mn-magne...

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Veröffentlicht in:Journal of the American Chemical Society 2016-02, Vol.138 (6), p.1893-1903
Hauptverfasser: Zhao, Jing-Ya, Chen, Gang, Gu, Yi-Ping, Cui, Ran, Zhang, Zhi-Ling, Yu, Zi-Li, Tang, Bo, Zhao, Yi-Fang, Pang, Dai-Wen
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container_issue 6
container_start_page 1893
container_title Journal of the American Chemical Society
container_volume 138
creator Zhao, Jing-Ya
Chen, Gang
Gu, Yi-Ping
Cui, Ran
Zhang, Zhi-Ling
Yu, Zi-Li
Tang, Bo
Zhao, Yi-Fang
Pang, Dai-Wen
description Cell-derived microvesicles (MVs) are natural carriers that can transport biological molecules between cells, which are expected to be promising delivery vehicles for therapeutic purposes. Strategies to label MVs are very important for investigation and application of MVs. Herein, ultrasmall Mn-magnetofunctionalized Ag2Se quantum dots (Ag2Se@Mn QDs) integrated with excellent near-infrared (NIR) fluorescence and magnetic resonance (MR) imaging capabilities have been developed for instant efficient labeling of MVs for their in vivo high-resolution dual-mode tracking. The Ag2Se@Mn QDs were fabricated by controlling the reaction of Mn2+ with the Ag2Se nanocrystals having been pretreated in 80 °C NaOH solution, with an ultrasmall size of ca. 1.8 nm, water dispersibility, high NIR fluorescence quantum yield of 13.2%, and high longitudinal relaxivity of 12.87 mM–1 s–1 (almost four times that of the commercial contrast agent Gd-DTPA). The ultrasmall size of the Ag2Se@Mn QDs enables them to be directly and efficiently loaded into MVs by electroporation, instantly and reliably conferring both NIR fluorescence and MR traceability on MVs. Our method for labeling MVs of different origins is universal and free of unfavorable influence on intrinsic behaviors of MVs. The complementary imaging capabilities of the Ag2Se@Mn QDs have made the long-term noninvasive whole-body high-resolution dual-mode tracking of MVs in vivo realized, by which the dynamic biodistribution of MVs has been revealed in a real-time and in situ quantitative manner. This work not only opens a new window for labeling with QDs, but also facilitates greatly the investigation and application of MVs.
doi_str_mv 10.1021/jacs.5b10340
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subjects Animals
Biocompatible Materials
Cell Line, Tumor
Humans
Magnetics
Mice
Quantum Dots
Silver - chemistry
Spectrum Analysis - methods
title Ultrasmall Magnetically Engineered Ag2Se Quantum Dots for Instant Efficient Labeling and Whole-Body High-Resolution Multimodal Real-Time Tracking of Cell-Derived Microvesicles
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