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Potentiometric pH Nanosensor for Intracellular Measurements: Real-Time and Continuous Assessment of Local Gradients

[Image: see text] We present a pH nanosensor conceived for single intracellular measurements. The sensing architecture consisted of a two-electrode system evaluated in the potentiometric mode. We used solid-contact carbon nanopipette electrodes tailored to produce both the indicator (pH nanosensor)...

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Autores principales: Aref, Mohaddeseh, Ranjbari, Elias, García-Guzmán, Juan José, Hu, Keke, Lork, Alicia, Crespo, Gaston A., Ewing, Andrew G., Cuartero, Maria
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2021
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8637545/
https://www.ncbi.nlm.nih.gov/pubmed/34783529
http://dx.doi.org/10.1021/acs.analchem.1c03874
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author Aref, Mohaddeseh
Ranjbari, Elias
García-Guzmán, Juan José
Hu, Keke
Lork, Alicia
Crespo, Gaston A.
Ewing, Andrew G.
Cuartero, Maria
author_facet Aref, Mohaddeseh
Ranjbari, Elias
García-Guzmán, Juan José
Hu, Keke
Lork, Alicia
Crespo, Gaston A.
Ewing, Andrew G.
Cuartero, Maria
author_sort Aref, Mohaddeseh
collection PubMed
description [Image: see text] We present a pH nanosensor conceived for single intracellular measurements. The sensing architecture consisted of a two-electrode system evaluated in the potentiometric mode. We used solid-contact carbon nanopipette electrodes tailored to produce both the indicator (pH nanosensor) and reference electrodes. The indicator electrode was a membrane-based ion-selective electrode containing a receptor for hydrogen ions that provided a favorable selectivity for intracellular measurements. The analytical features of the pH nanosensor revealed a Nernstian response (slope of −59.5 mV/pH unit) with appropriate repeatability and reproducibility (variation coefficients of <2% for the calibration parameters), a fast response time (<5 s), adequate medium-term drift (0.7 mV h(–1)), and a linear range of response including physiological and abnormal cell pH levels (6.0–8.5). In addition, the position and configuration of the reference electrode were investigated in cell-based experiments to provide unbiased pH measurements, in which both the indicator and reference electrodes were located inside the same cell, each of them inside two neighboring cells, or the indicator electrode inside the cell and the reference electrode outside of (but nearby) the studied cell. Finally, the pH nanosensor was applied to two cases: (i) the tracing of the pH gradient from extra-to intracellular media over insertion into a single PC12 cell and (ii) the monitoring of variations in intracellular pH in response to exogenous administration of pharmaceuticals. It is anticipated that the developed pH nanosensor, which is a label-free analytical tool, has high potential to aid in the investigation of pathological states that manifest in cell pH misregulation, with no restriction in the type of targeted cells.
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spelling pubmed-86375452021-12-02 Potentiometric pH Nanosensor for Intracellular Measurements: Real-Time and Continuous Assessment of Local Gradients Aref, Mohaddeseh Ranjbari, Elias García-Guzmán, Juan José Hu, Keke Lork, Alicia Crespo, Gaston A. Ewing, Andrew G. Cuartero, Maria Anal Chem [Image: see text] We present a pH nanosensor conceived for single intracellular measurements. The sensing architecture consisted of a two-electrode system evaluated in the potentiometric mode. We used solid-contact carbon nanopipette electrodes tailored to produce both the indicator (pH nanosensor) and reference electrodes. The indicator electrode was a membrane-based ion-selective electrode containing a receptor for hydrogen ions that provided a favorable selectivity for intracellular measurements. The analytical features of the pH nanosensor revealed a Nernstian response (slope of −59.5 mV/pH unit) with appropriate repeatability and reproducibility (variation coefficients of <2% for the calibration parameters), a fast response time (<5 s), adequate medium-term drift (0.7 mV h(–1)), and a linear range of response including physiological and abnormal cell pH levels (6.0–8.5). In addition, the position and configuration of the reference electrode were investigated in cell-based experiments to provide unbiased pH measurements, in which both the indicator and reference electrodes were located inside the same cell, each of them inside two neighboring cells, or the indicator electrode inside the cell and the reference electrode outside of (but nearby) the studied cell. Finally, the pH nanosensor was applied to two cases: (i) the tracing of the pH gradient from extra-to intracellular media over insertion into a single PC12 cell and (ii) the monitoring of variations in intracellular pH in response to exogenous administration of pharmaceuticals. It is anticipated that the developed pH nanosensor, which is a label-free analytical tool, has high potential to aid in the investigation of pathological states that manifest in cell pH misregulation, with no restriction in the type of targeted cells. American Chemical Society 2021-11-16 2021-11-30 /pmc/articles/PMC8637545/ /pubmed/34783529 http://dx.doi.org/10.1021/acs.analchem.1c03874 Text en © 2021 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by/4.0/Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Aref, Mohaddeseh
Ranjbari, Elias
García-Guzmán, Juan José
Hu, Keke
Lork, Alicia
Crespo, Gaston A.
Ewing, Andrew G.
Cuartero, Maria
Potentiometric pH Nanosensor for Intracellular Measurements: Real-Time and Continuous Assessment of Local Gradients
title Potentiometric pH Nanosensor for Intracellular Measurements: Real-Time and Continuous Assessment of Local Gradients
title_full Potentiometric pH Nanosensor for Intracellular Measurements: Real-Time and Continuous Assessment of Local Gradients
title_fullStr Potentiometric pH Nanosensor for Intracellular Measurements: Real-Time and Continuous Assessment of Local Gradients
title_full_unstemmed Potentiometric pH Nanosensor for Intracellular Measurements: Real-Time and Continuous Assessment of Local Gradients
title_short Potentiometric pH Nanosensor for Intracellular Measurements: Real-Time and Continuous Assessment of Local Gradients
title_sort potentiometric ph nanosensor for intracellular measurements: real-time and continuous assessment of local gradients
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8637545/
https://www.ncbi.nlm.nih.gov/pubmed/34783529
http://dx.doi.org/10.1021/acs.analchem.1c03874
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