International Journal of Nanomedicine · 2011 · 25 citations · 60 references
NanomedicineProteinlipid InteractionEngineeringProtein NanoparticlesPhotochemistryEndocytic VesiclesQuantum DotsEndocytic PathwayColloidal NanocrystalsExtracellular MicrovesiclesQuantum Dot FluorescenceMedicineCell BiologyBiophysicsNanodiscExosomes
Quantum dots have emerged with great promise for biological applications as fluorescent markers for immunostaining, labels for intracellular trafficking, and photosensitizers for photodynamic therapy. However, upon entry into a cell, quantum dots are trapped and their fluorescence is quenched in endocytic vesicles such as endosomes and lysosomes. In this study, the photophysical properties of quantum dots were investigated in liposomes as an in vitro vesicle model. Entrapment of quantum dots in liposomes decreases their fluorescence lifetime and intensity. Generation of free radicals by liposomal quantum dots is inhibited compared to that of free quantum dots. Nevertheless, quantum dot fluorescence lifetime and intensity increases due to photolysis of liposomes during irradiation. In addition, protein adsorption on the quantum dot surface and the acidic environment of vesicles also lead to quenching of quantum dot fluorescence, which reappears during irradiation. In conclusion, the in vitro model of phospholipid vesicles has demonstrated that those quantum dots that are fated to be entrapped in endocytic vesicles lose their fluorescence and ability to act as photosensitizers.
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Semiconductor Clusters, Nanocrystals, and Quantum Dots
A. Paul Alivisatos · Science · 1996 · 11.3K citations
Engineering, Colloidal Nanocrystals, Optoelectronic Devices +17
In vivo cancer targeting and imaging with semiconductor quantum dots
Xiaohu Gao, Yuanyuan Cui, Richard M. Levenson et al. · Nature Biotechnology · 2004 · 4.7K citations
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Austin M. Derfus, Warren C. W. Chan, Sangeeta N. Bhatia · Nano Letters · 2003 · 3.3K citations · Full text