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Live-Cell Imaging of Physiologically Relevant Metal Ions Using Genetically Encoded FRET-Based Probes

Essential biochemical reactions and processes within living organisms are coupled to subcellular fluctuations of metal ions. Disturbances in cellular metal ion homeostasis are frequently associated with pathological alterations, including neurotoxicity causing neurodegeneration, as well as metabolic...

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Autores principales: Bischof, Helmut, Burgstaller, Sandra, Waldeck-Weiermair, Markus, Rauter, Thomas, Schinagl, Maximilian, Ramadani-Muja, Jeta, Graier, Wolfgang F., Malli, Roland
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6562680/
https://www.ncbi.nlm.nih.gov/pubmed/31121936
http://dx.doi.org/10.3390/cells8050492
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author Bischof, Helmut
Burgstaller, Sandra
Waldeck-Weiermair, Markus
Rauter, Thomas
Schinagl, Maximilian
Ramadani-Muja, Jeta
Graier, Wolfgang F.
Malli, Roland
author_facet Bischof, Helmut
Burgstaller, Sandra
Waldeck-Weiermair, Markus
Rauter, Thomas
Schinagl, Maximilian
Ramadani-Muja, Jeta
Graier, Wolfgang F.
Malli, Roland
author_sort Bischof, Helmut
collection PubMed
description Essential biochemical reactions and processes within living organisms are coupled to subcellular fluctuations of metal ions. Disturbances in cellular metal ion homeostasis are frequently associated with pathological alterations, including neurotoxicity causing neurodegeneration, as well as metabolic disorders or cancer. Considering these important aspects of the cellular metal ion homeostasis in health and disease, measurements of subcellular ion signals are of broad scientific interest. The investigation of the cellular ion homeostasis using classical biochemical methods is quite difficult, often even not feasible or requires large cell numbers. Here, we report of genetically encoded fluorescent probes that enable the visualization of metal ion dynamics within individual living cells and their organelles with high temporal and spatial resolution. Generally, these probes consist of specific ion binding domains fused to fluorescent protein(s), altering their fluorescent properties upon ion binding. This review focuses on the functionality and potential of these genetically encoded fluorescent tools which enable monitoring (sub)cellular concentrations of alkali metals such as K(+), alkaline earth metals including Mg(2+) and Ca(2+), and transition metals including Cu(+)/Cu(2+) and Zn(2+). Moreover, we discuss possible approaches for the development and application of novel metal ion biosensors for Fe(2+)/Fe(3+), Mn(2+) and Na(+).
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spelling pubmed-65626802019-06-17 Live-Cell Imaging of Physiologically Relevant Metal Ions Using Genetically Encoded FRET-Based Probes Bischof, Helmut Burgstaller, Sandra Waldeck-Weiermair, Markus Rauter, Thomas Schinagl, Maximilian Ramadani-Muja, Jeta Graier, Wolfgang F. Malli, Roland Cells Review Essential biochemical reactions and processes within living organisms are coupled to subcellular fluctuations of metal ions. Disturbances in cellular metal ion homeostasis are frequently associated with pathological alterations, including neurotoxicity causing neurodegeneration, as well as metabolic disorders or cancer. Considering these important aspects of the cellular metal ion homeostasis in health and disease, measurements of subcellular ion signals are of broad scientific interest. The investigation of the cellular ion homeostasis using classical biochemical methods is quite difficult, often even not feasible or requires large cell numbers. Here, we report of genetically encoded fluorescent probes that enable the visualization of metal ion dynamics within individual living cells and their organelles with high temporal and spatial resolution. Generally, these probes consist of specific ion binding domains fused to fluorescent protein(s), altering their fluorescent properties upon ion binding. This review focuses on the functionality and potential of these genetically encoded fluorescent tools which enable monitoring (sub)cellular concentrations of alkali metals such as K(+), alkaline earth metals including Mg(2+) and Ca(2+), and transition metals including Cu(+)/Cu(2+) and Zn(2+). Moreover, we discuss possible approaches for the development and application of novel metal ion biosensors for Fe(2+)/Fe(3+), Mn(2+) and Na(+). MDPI 2019-05-22 /pmc/articles/PMC6562680/ /pubmed/31121936 http://dx.doi.org/10.3390/cells8050492 Text en © 2019 by the authors. 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 (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Review
Bischof, Helmut
Burgstaller, Sandra
Waldeck-Weiermair, Markus
Rauter, Thomas
Schinagl, Maximilian
Ramadani-Muja, Jeta
Graier, Wolfgang F.
Malli, Roland
Live-Cell Imaging of Physiologically Relevant Metal Ions Using Genetically Encoded FRET-Based Probes
title Live-Cell Imaging of Physiologically Relevant Metal Ions Using Genetically Encoded FRET-Based Probes
title_full Live-Cell Imaging of Physiologically Relevant Metal Ions Using Genetically Encoded FRET-Based Probes
title_fullStr Live-Cell Imaging of Physiologically Relevant Metal Ions Using Genetically Encoded FRET-Based Probes
title_full_unstemmed Live-Cell Imaging of Physiologically Relevant Metal Ions Using Genetically Encoded FRET-Based Probes
title_short Live-Cell Imaging of Physiologically Relevant Metal Ions Using Genetically Encoded FRET-Based Probes
title_sort live-cell imaging of physiologically relevant metal ions using genetically encoded fret-based probes
topic Review
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6562680/
https://www.ncbi.nlm.nih.gov/pubmed/31121936
http://dx.doi.org/10.3390/cells8050492
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