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Ultrabright AIEdots with tunable narrow emission for multiplexed fluorescence imaging

AIEgen doped fluorescent nanodots (AIEdots) have attracted lots of attention, due to their superior characteristics as fluorescent probes, such as excellent photostability, large Stokes shift, high brightness and tunable emission. Unfortunately, most of the currently available AIEdots exhibit broad...

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Autores principales: Zhou, Xiaobo, Zhao, Lingfeng, Zhang, Ke, Yang, Chaojie, Li, Shijie, Kang, Xiaoxia, Li, Guo, Wang, Qi, Ji, Haiwei, Wu, Mingmin, Liu, Jinxia, Qin, Yuling, Wu, Li
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9769110/
https://www.ncbi.nlm.nih.gov/pubmed/36605751
http://dx.doi.org/10.1039/d2sc04862k
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author Zhou, Xiaobo
Zhao, Lingfeng
Zhang, Ke
Yang, Chaojie
Li, Shijie
Kang, Xiaoxia
Li, Guo
Wang, Qi
Ji, Haiwei
Wu, Mingmin
Liu, Jinxia
Qin, Yuling
Wu, Li
author_facet Zhou, Xiaobo
Zhao, Lingfeng
Zhang, Ke
Yang, Chaojie
Li, Shijie
Kang, Xiaoxia
Li, Guo
Wang, Qi
Ji, Haiwei
Wu, Mingmin
Liu, Jinxia
Qin, Yuling
Wu, Li
author_sort Zhou, Xiaobo
collection PubMed
description AIEgen doped fluorescent nanodots (AIEdots) have attracted lots of attention, due to their superior characteristics as fluorescent probes, such as excellent photostability, large Stokes shift, high brightness and tunable emission. Unfortunately, most of the currently available AIEdots exhibit broad emission bandwidth, which limits their applications in multiplexed fluorescence imaging and detection. In this work, the strategy of designing and fabricating narrow emissive AIEdots (NE-AIEdots) with tunable wavelengths was presented by constructing a light-harvesting system with high energy transfer efficiency. Efficient intra-particle energy transfer from highly doped AIEgens, serving as the light-harvesting antenna, to the lightly doped narrow emissive fluorophore, resulted in high brightness and narrow emission. The emission band of NE-AIEdots with the full-width-at-half-maximum varied from 18 to 36 nm was 3–6.3 times narrower than that of traditional AIEdots. The single-particle brightness of NE-AIEdots was over 5-times that of commercial quantum dots under the same excitation and collection conditions. Taking advantage of the superior performance of these NE-AIEdots, multiplexed fluorescence imaging of lymph nodes in living mice was realized, which supported the future applications of NE-AIEdots for in vivo multiplexed labeling and clinical surgery.
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spelling pubmed-97691102023-01-04 Ultrabright AIEdots with tunable narrow emission for multiplexed fluorescence imaging Zhou, Xiaobo Zhao, Lingfeng Zhang, Ke Yang, Chaojie Li, Shijie Kang, Xiaoxia Li, Guo Wang, Qi Ji, Haiwei Wu, Mingmin Liu, Jinxia Qin, Yuling Wu, Li Chem Sci Chemistry AIEgen doped fluorescent nanodots (AIEdots) have attracted lots of attention, due to their superior characteristics as fluorescent probes, such as excellent photostability, large Stokes shift, high brightness and tunable emission. Unfortunately, most of the currently available AIEdots exhibit broad emission bandwidth, which limits their applications in multiplexed fluorescence imaging and detection. In this work, the strategy of designing and fabricating narrow emissive AIEdots (NE-AIEdots) with tunable wavelengths was presented by constructing a light-harvesting system with high energy transfer efficiency. Efficient intra-particle energy transfer from highly doped AIEgens, serving as the light-harvesting antenna, to the lightly doped narrow emissive fluorophore, resulted in high brightness and narrow emission. The emission band of NE-AIEdots with the full-width-at-half-maximum varied from 18 to 36 nm was 3–6.3 times narrower than that of traditional AIEdots. The single-particle brightness of NE-AIEdots was over 5-times that of commercial quantum dots under the same excitation and collection conditions. Taking advantage of the superior performance of these NE-AIEdots, multiplexed fluorescence imaging of lymph nodes in living mice was realized, which supported the future applications of NE-AIEdots for in vivo multiplexed labeling and clinical surgery. The Royal Society of Chemistry 2022-10-25 /pmc/articles/PMC9769110/ /pubmed/36605751 http://dx.doi.org/10.1039/d2sc04862k Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Zhou, Xiaobo
Zhao, Lingfeng
Zhang, Ke
Yang, Chaojie
Li, Shijie
Kang, Xiaoxia
Li, Guo
Wang, Qi
Ji, Haiwei
Wu, Mingmin
Liu, Jinxia
Qin, Yuling
Wu, Li
Ultrabright AIEdots with tunable narrow emission for multiplexed fluorescence imaging
title Ultrabright AIEdots with tunable narrow emission for multiplexed fluorescence imaging
title_full Ultrabright AIEdots with tunable narrow emission for multiplexed fluorescence imaging
title_fullStr Ultrabright AIEdots with tunable narrow emission for multiplexed fluorescence imaging
title_full_unstemmed Ultrabright AIEdots with tunable narrow emission for multiplexed fluorescence imaging
title_short Ultrabright AIEdots with tunable narrow emission for multiplexed fluorescence imaging
title_sort ultrabright aiedots with tunable narrow emission for multiplexed fluorescence imaging
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9769110/
https://www.ncbi.nlm.nih.gov/pubmed/36605751
http://dx.doi.org/10.1039/d2sc04862k
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