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Exploration of Fluorescent Protein Voltage Probes Based on Circularly Permuted Fluorescent Proteins

Genetically encoded fluorescent protein (FP) voltage sensors are promising tools for optical monitoring of the electrical activity of cells. Over the last decade, several designs of fusion proteins have been explored and some of them have proven to be sensitive enough to record membrane voltage tran...

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Autores principales: Gautam, Sunita Ghimire, Perron, Amelie, Mutoh, Hiroki, Knöpfel, Thomas
Formato: Texto
Lenguaje:English
Publicado: Frontiers Research Foundation 2009
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2766268/
https://www.ncbi.nlm.nih.gov/pubmed/19862342
http://dx.doi.org/10.3389/neuro.16.014.2009
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author Gautam, Sunita Ghimire
Perron, Amelie
Mutoh, Hiroki
Knöpfel, Thomas
author_facet Gautam, Sunita Ghimire
Perron, Amelie
Mutoh, Hiroki
Knöpfel, Thomas
author_sort Gautam, Sunita Ghimire
collection PubMed
description Genetically encoded fluorescent protein (FP) voltage sensors are promising tools for optical monitoring of the electrical activity of cells. Over the last decade, several designs of fusion proteins have been explored and some of them have proven to be sensitive enough to record membrane voltage transients from single mammalian cells. Most prominent are the families of voltage sensitive fluorescent proteins (VSFPs) that utilize the voltage sensor domain (VSD) of Ciona intestinalis voltage sensor-containing phosphatase (Ci-VSP). The voltage sensitivity of the fluorescence readout of these previously reported membrane potential indicators is achieved either via a change in the efficiency of fluorescence resonance energy transfer between two FP spectral variants or via modulation in the fluorescence intensity of a single FP. Here, we report our exploration on a third VSFP design principle based on circularly permuted fluorescent protein (cpFP) variants. Using circularly permuted EGFP derived from GCaMP2 and two newly generated circularly permuted variants of the far-red emitting protein named mKate, we generated and characterized a series of voltage-sensitive probes wherein the cpFPs were fused to the VSD of Ci-VSP. The most promising variants were based on circularly permuted mKate with new N- and C-termini given by residues 180 and 182. Even so their voltage sensitivity was relatively modest, they constitute a proof of principle for this novel protein design.
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spelling pubmed-27662682009-10-27 Exploration of Fluorescent Protein Voltage Probes Based on Circularly Permuted Fluorescent Proteins Gautam, Sunita Ghimire Perron, Amelie Mutoh, Hiroki Knöpfel, Thomas Front Neuroengineering Neuroscience Genetically encoded fluorescent protein (FP) voltage sensors are promising tools for optical monitoring of the electrical activity of cells. Over the last decade, several designs of fusion proteins have been explored and some of them have proven to be sensitive enough to record membrane voltage transients from single mammalian cells. Most prominent are the families of voltage sensitive fluorescent proteins (VSFPs) that utilize the voltage sensor domain (VSD) of Ciona intestinalis voltage sensor-containing phosphatase (Ci-VSP). The voltage sensitivity of the fluorescence readout of these previously reported membrane potential indicators is achieved either via a change in the efficiency of fluorescence resonance energy transfer between two FP spectral variants or via modulation in the fluorescence intensity of a single FP. Here, we report our exploration on a third VSFP design principle based on circularly permuted fluorescent protein (cpFP) variants. Using circularly permuted EGFP derived from GCaMP2 and two newly generated circularly permuted variants of the far-red emitting protein named mKate, we generated and characterized a series of voltage-sensitive probes wherein the cpFPs were fused to the VSD of Ci-VSP. The most promising variants were based on circularly permuted mKate with new N- and C-termini given by residues 180 and 182. Even so their voltage sensitivity was relatively modest, they constitute a proof of principle for this novel protein design. Frontiers Research Foundation 2009-10-13 /pmc/articles/PMC2766268/ /pubmed/19862342 http://dx.doi.org/10.3389/neuro.16.014.2009 Text en Copyright © 2009 Gautam, Perron, Mutoh and Knöpfel. http://www.frontiersin.org/licenseagreement This is an open-access article subject to an exclusive license agreement between the authors and the Frontiers Research Foundation, which permits unrestricted use, distribution, and reproduction in any medium, provided the original authors and source are credited.
spellingShingle Neuroscience
Gautam, Sunita Ghimire
Perron, Amelie
Mutoh, Hiroki
Knöpfel, Thomas
Exploration of Fluorescent Protein Voltage Probes Based on Circularly Permuted Fluorescent Proteins
title Exploration of Fluorescent Protein Voltage Probes Based on Circularly Permuted Fluorescent Proteins
title_full Exploration of Fluorescent Protein Voltage Probes Based on Circularly Permuted Fluorescent Proteins
title_fullStr Exploration of Fluorescent Protein Voltage Probes Based on Circularly Permuted Fluorescent Proteins
title_full_unstemmed Exploration of Fluorescent Protein Voltage Probes Based on Circularly Permuted Fluorescent Proteins
title_short Exploration of Fluorescent Protein Voltage Probes Based on Circularly Permuted Fluorescent Proteins
title_sort exploration of fluorescent protein voltage probes based on circularly permuted fluorescent proteins
topic Neuroscience
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2766268/
https://www.ncbi.nlm.nih.gov/pubmed/19862342
http://dx.doi.org/10.3389/neuro.16.014.2009
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