A novel flurophore-cyano-carboxylic-Ag microhybrid: Enhanced two photon absorption for two-photon photothermal therapy of HeLa cancer cells by targeting mitochondria.
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2018
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Abstract
In this study, a novel two-photon photothermal therapy (TP-PTT) agent based on an organic-metal microhybrid with surface Plasmon resonance (SPR) enhanced two-photon absorption (TPA) characteristic was designed and synthesized using a fluorescent cyano-carboxylic derivative 2-cyano-3-(9-ethyl-9H-carbazol-3-yl) -acrylic acid (abbreviated as CECZA) and silver nanoparticles through self-assembly process induced by the interfacial coordination interactions between the O/N atom of CECZA and Agion at the surface of Ag nanoparticles. The coordination interactions caused electron transfer from the Ag nanoparticles to CECZA molecules at the excited state, resulting in a decreased fluorescence quantum yield. The interfacial coordination interactions also enhanced the nonlinear optical properties, including 13 times increase in the TPA cross-section (δ). The decreased fluorescence quantum yield and increased two photon absorption caused by the SPR effect led excellent two-photon photothermal conversion, which was beneficial for the TP-PTT effect on HeLa cancer cells.
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kong2018a
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| Authors | Kong, Lin;Yang, Li;Xin, Chen-Qi;Zhu, Shu-Juan;Zhang, Hui-Hui;Zhang, Ming-Zhu;Yang, Jia-Xiang;Li, Lin;Zhou, Hong-Ping;Tian, Yu-Peng; |
| Journal | Biosensors & bioelectronics |
| Year | 2018 |
| DOI |
S0956-5663(18)30122-2
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| URL | |
| Keywords | Keywords not found |
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