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A Single Fluorescent Protein-Based Indicator with a Time-Resolved Fluorescence Readout for Precise pH Measurements in the Alkaline Range

The real-time monitoring of the intracellular pH in live cells with high precision represents an important methodological challenge. Although genetically encoded fluorescent indicators can be considered as a probe of choice for such measurements, they are hindered mostly by the inability to determin...

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Autores principales: Simonyan, Tatiana R., Protasova, Elena A., Mamontova, Anastasia V., Shakhov, Aleksander M., Lukyanov, Konstantin A., Maksimov, Eugene G., Bogdanov, Alexey M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9658282/
https://www.ncbi.nlm.nih.gov/pubmed/36361706
http://dx.doi.org/10.3390/ijms232112907
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author Simonyan, Tatiana R.
Protasova, Elena A.
Mamontova, Anastasia V.
Shakhov, Aleksander M.
Lukyanov, Konstantin A.
Maksimov, Eugene G.
Bogdanov, Alexey M.
author_facet Simonyan, Tatiana R.
Protasova, Elena A.
Mamontova, Anastasia V.
Shakhov, Aleksander M.
Lukyanov, Konstantin A.
Maksimov, Eugene G.
Bogdanov, Alexey M.
author_sort Simonyan, Tatiana R.
collection PubMed
description The real-time monitoring of the intracellular pH in live cells with high precision represents an important methodological challenge. Although genetically encoded fluorescent indicators can be considered as a probe of choice for such measurements, they are hindered mostly by the inability to determine an absolute pH value and/or a narrow dynamic range of the signal, making them inefficient for recording the small pH changes that typically occur within cellular organelles. Here, we study the pH sensitivity of a green-fluorescence-protein (GFP)-based emitter (EGFP-Y145L/S205V) with the alkaline-shifted chromophore’s pKa and demonstrate that, in the pH range of 7.5–9.0, its fluorescence lifetime changes by a factor of ~3.5 in a quasi-linear manner in mammalian cells. Considering the relatively strong lifetime response in a narrow pH range, we proposed the mitochondria, which are known to have a weakly alkaline milieu, as a target for live-cell pH measurements. Using fluorescence lifetime imaging microscopy (FLIM) to visualize the HEK293T cells expressing mitochondrially targeted EGFP-Y145L/S205V, we succeeded in determining the absolute pH value of the mitochondria and recorded the ETC-uncoupler-stimulated pH shift with a precision of 0.1 unit. We thus show that a single GFP with alkaline-shifted pKa can act as a high-precision indicator that can be used in a specific pH range.
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spelling pubmed-96582822022-11-15 A Single Fluorescent Protein-Based Indicator with a Time-Resolved Fluorescence Readout for Precise pH Measurements in the Alkaline Range Simonyan, Tatiana R. Protasova, Elena A. Mamontova, Anastasia V. Shakhov, Aleksander M. Lukyanov, Konstantin A. Maksimov, Eugene G. Bogdanov, Alexey M. Int J Mol Sci Article The real-time monitoring of the intracellular pH in live cells with high precision represents an important methodological challenge. Although genetically encoded fluorescent indicators can be considered as a probe of choice for such measurements, they are hindered mostly by the inability to determine an absolute pH value and/or a narrow dynamic range of the signal, making them inefficient for recording the small pH changes that typically occur within cellular organelles. Here, we study the pH sensitivity of a green-fluorescence-protein (GFP)-based emitter (EGFP-Y145L/S205V) with the alkaline-shifted chromophore’s pKa and demonstrate that, in the pH range of 7.5–9.0, its fluorescence lifetime changes by a factor of ~3.5 in a quasi-linear manner in mammalian cells. Considering the relatively strong lifetime response in a narrow pH range, we proposed the mitochondria, which are known to have a weakly alkaline milieu, as a target for live-cell pH measurements. Using fluorescence lifetime imaging microscopy (FLIM) to visualize the HEK293T cells expressing mitochondrially targeted EGFP-Y145L/S205V, we succeeded in determining the absolute pH value of the mitochondria and recorded the ETC-uncoupler-stimulated pH shift with a precision of 0.1 unit. We thus show that a single GFP with alkaline-shifted pKa can act as a high-precision indicator that can be used in a specific pH range. MDPI 2022-10-26 /pmc/articles/PMC9658282/ /pubmed/36361706 http://dx.doi.org/10.3390/ijms232112907 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Simonyan, Tatiana R.
Protasova, Elena A.
Mamontova, Anastasia V.
Shakhov, Aleksander M.
Lukyanov, Konstantin A.
Maksimov, Eugene G.
Bogdanov, Alexey M.
A Single Fluorescent Protein-Based Indicator with a Time-Resolved Fluorescence Readout for Precise pH Measurements in the Alkaline Range
title A Single Fluorescent Protein-Based Indicator with a Time-Resolved Fluorescence Readout for Precise pH Measurements in the Alkaline Range
title_full A Single Fluorescent Protein-Based Indicator with a Time-Resolved Fluorescence Readout for Precise pH Measurements in the Alkaline Range
title_fullStr A Single Fluorescent Protein-Based Indicator with a Time-Resolved Fluorescence Readout for Precise pH Measurements in the Alkaline Range
title_full_unstemmed A Single Fluorescent Protein-Based Indicator with a Time-Resolved Fluorescence Readout for Precise pH Measurements in the Alkaline Range
title_short A Single Fluorescent Protein-Based Indicator with a Time-Resolved Fluorescence Readout for Precise pH Measurements in the Alkaline Range
title_sort single fluorescent protein-based indicator with a time-resolved fluorescence readout for precise ph measurements in the alkaline range
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9658282/
https://www.ncbi.nlm.nih.gov/pubmed/36361706
http://dx.doi.org/10.3390/ijms232112907
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