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A two-photon ratiometric fluorescent probe for real-time imaging and quantification of NO in neural stem cells during activation regulation

Developing a novel tool capable of real-time monitoring and accurate quantification of NO is critical to understanding its role in physiological and pathological processes. Herein, a two-photon ratiometric fluorescent probe (NOP) was developed for real-time imaging and quantification of NO based on...

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Autores principales: Liang, Mengyu, Liu, Zhichao, Zhang, Zhonghui, Mei, Yuxiao, Tian, Yang
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/PMC9006966/
https://www.ncbi.nlm.nih.gov/pubmed/35509464
http://dx.doi.org/10.1039/d2sc00326k
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author Liang, Mengyu
Liu, Zhichao
Zhang, Zhonghui
Mei, Yuxiao
Tian, Yang
author_facet Liang, Mengyu
Liu, Zhichao
Zhang, Zhonghui
Mei, Yuxiao
Tian, Yang
author_sort Liang, Mengyu
collection PubMed
description Developing a novel tool capable of real-time monitoring and accurate quantification of NO is critical to understanding its role in physiological and pathological processes. Herein, a two-photon ratiometric fluorescent probe (NOP) was developed for real-time imaging and quantification of NO based on fluorescence resonance energy transfer-photoinduced electron transfer (FRET-PET). In this developed probe, coumarin (CM) and naphthalimide with o-phenylenediamine (NPM) were rationally designed as a fluorescent donor and acceptor, respectively, to enable a ratiometric fluorescence response to NO. The developed NO probe demonstrated good detection linearity with the concentration of NO in the range of 0.100–200 μM, with a detection limit of 19.5 ± 1.00 nM. Considering the advantages of high selectivity, good accuracy and rapid dynamic response (<15 s), the developed NO probe was successfully applied for real-time imaging and accurate quantification of NO in neural stem cells (NSCs) and different regions of mouse brain tissue with a penetration depth of 350 μm. Using this powerful tool, it was found that NO regulated the activation and differentiation of quiescent NSCs (qNSCs). In addition, NO-induced differentiation of qNSCs into neurons was found to be dose-dependent: 50.0 μM NO caused about 50.0% of qNSCs to differentiate into neurons. Moreover, different regions of the mouse brain were observed to be closely related to the concentration of NO, and the concentration of NO in the DG region was found to be lower than that in the S1BF, CA1, LD and CPu of the Alzheimer's disease (AD) mouse brain. The symptoms of AD mice were significantly improved through the treatment with NO-activated NSCs in the DG region.
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spelling pubmed-90069662022-05-03 A two-photon ratiometric fluorescent probe for real-time imaging and quantification of NO in neural stem cells during activation regulation Liang, Mengyu Liu, Zhichao Zhang, Zhonghui Mei, Yuxiao Tian, Yang Chem Sci Chemistry Developing a novel tool capable of real-time monitoring and accurate quantification of NO is critical to understanding its role in physiological and pathological processes. Herein, a two-photon ratiometric fluorescent probe (NOP) was developed for real-time imaging and quantification of NO based on fluorescence resonance energy transfer-photoinduced electron transfer (FRET-PET). In this developed probe, coumarin (CM) and naphthalimide with o-phenylenediamine (NPM) were rationally designed as a fluorescent donor and acceptor, respectively, to enable a ratiometric fluorescence response to NO. The developed NO probe demonstrated good detection linearity with the concentration of NO in the range of 0.100–200 μM, with a detection limit of 19.5 ± 1.00 nM. Considering the advantages of high selectivity, good accuracy and rapid dynamic response (<15 s), the developed NO probe was successfully applied for real-time imaging and accurate quantification of NO in neural stem cells (NSCs) and different regions of mouse brain tissue with a penetration depth of 350 μm. Using this powerful tool, it was found that NO regulated the activation and differentiation of quiescent NSCs (qNSCs). In addition, NO-induced differentiation of qNSCs into neurons was found to be dose-dependent: 50.0 μM NO caused about 50.0% of qNSCs to differentiate into neurons. Moreover, different regions of the mouse brain were observed to be closely related to the concentration of NO, and the concentration of NO in the DG region was found to be lower than that in the S1BF, CA1, LD and CPu of the Alzheimer's disease (AD) mouse brain. The symptoms of AD mice were significantly improved through the treatment with NO-activated NSCs in the DG region. The Royal Society of Chemistry 2022-03-21 /pmc/articles/PMC9006966/ /pubmed/35509464 http://dx.doi.org/10.1039/d2sc00326k Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Liang, Mengyu
Liu, Zhichao
Zhang, Zhonghui
Mei, Yuxiao
Tian, Yang
A two-photon ratiometric fluorescent probe for real-time imaging and quantification of NO in neural stem cells during activation regulation
title A two-photon ratiometric fluorescent probe for real-time imaging and quantification of NO in neural stem cells during activation regulation
title_full A two-photon ratiometric fluorescent probe for real-time imaging and quantification of NO in neural stem cells during activation regulation
title_fullStr A two-photon ratiometric fluorescent probe for real-time imaging and quantification of NO in neural stem cells during activation regulation
title_full_unstemmed A two-photon ratiometric fluorescent probe for real-time imaging and quantification of NO in neural stem cells during activation regulation
title_short A two-photon ratiometric fluorescent probe for real-time imaging and quantification of NO in neural stem cells during activation regulation
title_sort two-photon ratiometric fluorescent probe for real-time imaging and quantification of no in neural stem cells during activation regulation
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9006966/
https://www.ncbi.nlm.nih.gov/pubmed/35509464
http://dx.doi.org/10.1039/d2sc00326k
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