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Quantitative Imaging of Glutathione in Live Cells Using a Reversible Reaction-Based Ratiometric Fluorescent Probe

[Image: see text] Glutathione (GSH) plays an important role in maintaining redox homeostasis inside cells. Currently, there are no methods available to quantitatively assess the GSH concentration in live cells. Live cell fluorescence imaging revolutionized the field of cell biology and has become an...

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Autores principales: Jiang, Xiqian, Yu, Yong, Chen, Jianwei, Zhao, Mingkun, Chen, Hui, Song, Xianzhou, Matzuk, Alexander J., Carroll, Shaina L., Tan, Xiao, Sizovs, Antons, Cheng, Ninghui, Wang, Meng C., Wang, Jin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2014
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4371605/
https://www.ncbi.nlm.nih.gov/pubmed/25531746
http://dx.doi.org/10.1021/cb500986w
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author Jiang, Xiqian
Yu, Yong
Chen, Jianwei
Zhao, Mingkun
Chen, Hui
Song, Xianzhou
Matzuk, Alexander J.
Carroll, Shaina L.
Tan, Xiao
Sizovs, Antons
Cheng, Ninghui
Wang, Meng C.
Wang, Jin
author_facet Jiang, Xiqian
Yu, Yong
Chen, Jianwei
Zhao, Mingkun
Chen, Hui
Song, Xianzhou
Matzuk, Alexander J.
Carroll, Shaina L.
Tan, Xiao
Sizovs, Antons
Cheng, Ninghui
Wang, Meng C.
Wang, Jin
author_sort Jiang, Xiqian
collection PubMed
description [Image: see text] Glutathione (GSH) plays an important role in maintaining redox homeostasis inside cells. Currently, there are no methods available to quantitatively assess the GSH concentration in live cells. Live cell fluorescence imaging revolutionized the field of cell biology and has become an indispensable tool in current biological studies. In order to minimize the disturbance to the biological system in live cell imaging, the probe concentration needs to be significantly lower than the analyte concentration. Because of this, any irreversible reaction-based GSH probe can only provide qualitative results within a short reaction time and will exhibit maximum response regardless of the GSH concentration if the reaction is completed. A reversible reaction-based probe with an appropriate equilibrium constant allows measurement of an analyte at much higher concentrations and, thus, is a prerequisite for GSH quantification inside cells. In this contribution, we report the first fluorescent probe—ThiolQuant Green (TQ Green)—for quantitative imaging of GSH in live cells. Due to the reversible nature of the reaction between the probe and GSH, we are able to quantify mM concentrations of GSH with TQ Green concentrations as low as 20 nM. Furthermore, the GSH concentrations measured using TQ Green in 3T3-L1, HeLa, HepG2, PANC-1, and PANC-28 cells are reproducible and well correlated with the values obtained from cell lysates. TQ Green imaging can also resolve the changes in GSH concentration in PANC-1 cells upon diethylmaleate (DEM) treatment. In addition, TQ Green can be conveniently applied in fluorescence activated cell sorting (FACS) to measure GSH level changes. Through this study, we not only demonstrate the importance of reaction reversibility in designing quantitative reaction-based fluorescent probes but also provide a practical tool to facilitate redox biology studies.
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spelling pubmed-43716052015-03-31 Quantitative Imaging of Glutathione in Live Cells Using a Reversible Reaction-Based Ratiometric Fluorescent Probe Jiang, Xiqian Yu, Yong Chen, Jianwei Zhao, Mingkun Chen, Hui Song, Xianzhou Matzuk, Alexander J. Carroll, Shaina L. Tan, Xiao Sizovs, Antons Cheng, Ninghui Wang, Meng C. Wang, Jin ACS Chem Biol [Image: see text] Glutathione (GSH) plays an important role in maintaining redox homeostasis inside cells. Currently, there are no methods available to quantitatively assess the GSH concentration in live cells. Live cell fluorescence imaging revolutionized the field of cell biology and has become an indispensable tool in current biological studies. In order to minimize the disturbance to the biological system in live cell imaging, the probe concentration needs to be significantly lower than the analyte concentration. Because of this, any irreversible reaction-based GSH probe can only provide qualitative results within a short reaction time and will exhibit maximum response regardless of the GSH concentration if the reaction is completed. A reversible reaction-based probe with an appropriate equilibrium constant allows measurement of an analyte at much higher concentrations and, thus, is a prerequisite for GSH quantification inside cells. In this contribution, we report the first fluorescent probe—ThiolQuant Green (TQ Green)—for quantitative imaging of GSH in live cells. Due to the reversible nature of the reaction between the probe and GSH, we are able to quantify mM concentrations of GSH with TQ Green concentrations as low as 20 nM. Furthermore, the GSH concentrations measured using TQ Green in 3T3-L1, HeLa, HepG2, PANC-1, and PANC-28 cells are reproducible and well correlated with the values obtained from cell lysates. TQ Green imaging can also resolve the changes in GSH concentration in PANC-1 cells upon diethylmaleate (DEM) treatment. In addition, TQ Green can be conveniently applied in fluorescence activated cell sorting (FACS) to measure GSH level changes. Through this study, we not only demonstrate the importance of reaction reversibility in designing quantitative reaction-based fluorescent probes but also provide a practical tool to facilitate redox biology studies. American Chemical Society 2014-12-19 2015-03-20 /pmc/articles/PMC4371605/ /pubmed/25531746 http://dx.doi.org/10.1021/cb500986w Text en Copyright © 2014 American Chemical Society This is an open access article published under an ACS AuthorChoice License (http://pubs.acs.org/page/policy/authorchoice_termsofuse.html) , which permits copying and redistribution of the article or any adaptations for non-commercial purposes.
spellingShingle Jiang, Xiqian
Yu, Yong
Chen, Jianwei
Zhao, Mingkun
Chen, Hui
Song, Xianzhou
Matzuk, Alexander J.
Carroll, Shaina L.
Tan, Xiao
Sizovs, Antons
Cheng, Ninghui
Wang, Meng C.
Wang, Jin
Quantitative Imaging of Glutathione in Live Cells Using a Reversible Reaction-Based Ratiometric Fluorescent Probe
title Quantitative Imaging of Glutathione in Live Cells Using a Reversible Reaction-Based Ratiometric Fluorescent Probe
title_full Quantitative Imaging of Glutathione in Live Cells Using a Reversible Reaction-Based Ratiometric Fluorescent Probe
title_fullStr Quantitative Imaging of Glutathione in Live Cells Using a Reversible Reaction-Based Ratiometric Fluorescent Probe
title_full_unstemmed Quantitative Imaging of Glutathione in Live Cells Using a Reversible Reaction-Based Ratiometric Fluorescent Probe
title_short Quantitative Imaging of Glutathione in Live Cells Using a Reversible Reaction-Based Ratiometric Fluorescent Probe
title_sort quantitative imaging of glutathione in live cells using a reversible reaction-based ratiometric fluorescent probe
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4371605/
https://www.ncbi.nlm.nih.gov/pubmed/25531746
http://dx.doi.org/10.1021/cb500986w
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