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A FRET-based upconversion nanoprobe assembled with an electrochromic chromophore for sensitive detection of hydrogen sulfide and

Hydrogen sulfide (H 2 S) as an important gaseous signaling molecule is closely related to numerous biological processes in living systems. To further study the physiological and pathological roles of H 2 S, convenient and efficient detection techniques for endogenous H 2 S in vivo are still in urgen...

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Bibliographic Details
Published in:Nanoscale 2020-08, Vol.12 (33), p.17517-17529
Main Authors: Cui, Mengyuan, Li, Haonan, Ren, Xiangyu, Xia, Lili, Deng, Dawei, Gu, Yueqing, Li, Dahong, Wang, Peng
Format: Article
Language:English
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Summary:Hydrogen sulfide (H 2 S) as an important gaseous signaling molecule is closely related to numerous biological processes in living systems. To further study the physiological and pathological roles of H 2 S, convenient and efficient detection techniques for endogenous H 2 S in vivo are still in urgent demand. In this study, an electrochromic chromophore, dicationic 1,1,4,4-tetra-aryl butadiene (EM1), was innovatively introduced into upconversion nanoparticles (UCNPs) and a nanoprobe, PAAO-UCNPs-EM1, was constructed for the detection of H 2 S. This nanosystem was made of core-shell upconversion nanoparticles (NaYF 4 :Yb,Tm@NaYF 4 :Yb,Er), EM1, and polyacrylic acid (PAA)-octylamine. The EM1 with strong absorption ranging from 500 to 850 nm could serve as an energy acceptor to quench the upconversion luminescence of UCNPs through the Förster resonance energy transfer (FRET) process. In the presence of H 2 S, the EM1 in the nanoprobe was reduced to a colorless diene (EM2), resulting in the linear enhancement of luminescence emissions at 660 nm and 800 nm under the excitation of 980 nm light because the FRET was switched off. The nanoprobe PAAO-UCNPs-EM1PAAO-UCNPs-EM1 exhibited fast response and high sensitivity to H 2 S with a LoD of 1.21 × 10 −7 M. Moreover, it was successfully employed in detecting the endogenous and exogenous H 2 S in living cells with high selectivity and low cytotoxicity. Also, this nanoprobe could distinguish normal and tumor cells by an upconversion luminescence imaging of endogenous H 2 S. Furthermore, the nanoprobe could significantly monitor H 2 S in a tumor-bearing nude mouse model. Therefore, we anticipate that this novel nanoprobe assembled with an electrochromic chromophore for responding to H 2 S and for bioimaging this molecule would have a promising prospect in biological and clinical investigations. A FRET-based upconversion nanoprobe assembled with an electrochromic chromophore was rationally designed for hydrogen sulfide detection in vitro and in vivo .
ISSN:2040-3364
2040-3372
DOI:10.1039/d0nr03884a