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Development and characterization of novel jGCaMP8f calcium sensor variants with improved kinetics and fluorescence response range

INTRODUCTION: Genetically encoded biosensors for monitoring intracellular calcium changes have advanced our understanding of cell signaling and neuronal activity patterns in health and disease. Successful application of GCaMP biosensors to a wide range of biological questions requires that sensor pr...

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Autores principales: Tran, Oanh, Hughes, Holly J., Carter, Tom, Török, Katalin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10234427/
https://www.ncbi.nlm.nih.gov/pubmed/37275778
http://dx.doi.org/10.3389/fncel.2023.1155406
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author Tran, Oanh
Hughes, Holly J.
Carter, Tom
Török, Katalin
author_facet Tran, Oanh
Hughes, Holly J.
Carter, Tom
Török, Katalin
author_sort Tran, Oanh
collection PubMed
description INTRODUCTION: Genetically encoded biosensors for monitoring intracellular calcium changes have advanced our understanding of cell signaling and neuronal activity patterns in health and disease. Successful application of GCaMP biosensors to a wide range of biological questions requires that sensor properties such as brightness and dynamic range, ligand affinity and response kinetics be tuned to the specific conditions or phenomena to be investigated. Random as well as rational targeted mutations of such sensor molecules have led to a number of important breakthroughs in this field, including the calcium sensors GCaMP6f and GCaMP6f(u). jGCaMP8f of the most recently developed generation is promising a step-change in in vivo imaging with further increased fluorescence dynamic range. Here, we critically examine the biophysical properties of jGCaMP8f and report development by rational design of two novel variants of jGCaMP8f. METHODS: We determined the in vitro biophysical properties of jGCaMP8f and selected variants by fluorescence spectroscopies and compared their performance monitoring intracellular Ca(2+) transients with previously developed fast and bright GCaMP sensors by live cell imaging. RESULTS: We demonstrate that the physiologically highly relevant Mg(2+) not only majorly affects the kinetic responses of GCaMPs but also their brightness and fluorescence dynamic range. We developed novel variants jGCaMP8f L27A which has threefold faster off-kinetics and jGCaMP8f F366H which shows a ∼3-fold greater dynamic range than jGCaMP8f, in vitro as well as in HEK293T cells and endothelial cell line HUVEC in response to ATP stimulation. DISCUSSION: We discuss the importance of optimization of biosensors for studying neurobiology in the context of the novel variants of jGCaMP8f. The jGCaMP8f F366H variant with a large dynamic range has the potential to improve in vivo imaging outcomes with increased signal-to-noise ratio. The L27A variant with faster kinetics than jGCaMP8f has larger cellular responses than previous fast GCaMP variants. The jGCaMP8f generation and novel improved variants presented here will further increase the application potential of GECIs in health and disease.
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spelling pubmed-102344272023-06-02 Development and characterization of novel jGCaMP8f calcium sensor variants with improved kinetics and fluorescence response range Tran, Oanh Hughes, Holly J. Carter, Tom Török, Katalin Front Cell Neurosci Neuroscience INTRODUCTION: Genetically encoded biosensors for monitoring intracellular calcium changes have advanced our understanding of cell signaling and neuronal activity patterns in health and disease. Successful application of GCaMP biosensors to a wide range of biological questions requires that sensor properties such as brightness and dynamic range, ligand affinity and response kinetics be tuned to the specific conditions or phenomena to be investigated. Random as well as rational targeted mutations of such sensor molecules have led to a number of important breakthroughs in this field, including the calcium sensors GCaMP6f and GCaMP6f(u). jGCaMP8f of the most recently developed generation is promising a step-change in in vivo imaging with further increased fluorescence dynamic range. Here, we critically examine the biophysical properties of jGCaMP8f and report development by rational design of two novel variants of jGCaMP8f. METHODS: We determined the in vitro biophysical properties of jGCaMP8f and selected variants by fluorescence spectroscopies and compared their performance monitoring intracellular Ca(2+) transients with previously developed fast and bright GCaMP sensors by live cell imaging. RESULTS: We demonstrate that the physiologically highly relevant Mg(2+) not only majorly affects the kinetic responses of GCaMPs but also their brightness and fluorescence dynamic range. We developed novel variants jGCaMP8f L27A which has threefold faster off-kinetics and jGCaMP8f F366H which shows a ∼3-fold greater dynamic range than jGCaMP8f, in vitro as well as in HEK293T cells and endothelial cell line HUVEC in response to ATP stimulation. DISCUSSION: We discuss the importance of optimization of biosensors for studying neurobiology in the context of the novel variants of jGCaMP8f. The jGCaMP8f F366H variant with a large dynamic range has the potential to improve in vivo imaging outcomes with increased signal-to-noise ratio. The L27A variant with faster kinetics than jGCaMP8f has larger cellular responses than previous fast GCaMP variants. The jGCaMP8f generation and novel improved variants presented here will further increase the application potential of GECIs in health and disease. Frontiers Media S.A. 2023-05-18 /pmc/articles/PMC10234427/ /pubmed/37275778 http://dx.doi.org/10.3389/fncel.2023.1155406 Text en Copyright © 2023 Tran, Hughes, Carter and Török. https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Neuroscience
Tran, Oanh
Hughes, Holly J.
Carter, Tom
Török, Katalin
Development and characterization of novel jGCaMP8f calcium sensor variants with improved kinetics and fluorescence response range
title Development and characterization of novel jGCaMP8f calcium sensor variants with improved kinetics and fluorescence response range
title_full Development and characterization of novel jGCaMP8f calcium sensor variants with improved kinetics and fluorescence response range
title_fullStr Development and characterization of novel jGCaMP8f calcium sensor variants with improved kinetics and fluorescence response range
title_full_unstemmed Development and characterization of novel jGCaMP8f calcium sensor variants with improved kinetics and fluorescence response range
title_short Development and characterization of novel jGCaMP8f calcium sensor variants with improved kinetics and fluorescence response range
title_sort development and characterization of novel jgcamp8f calcium sensor variants with improved kinetics and fluorescence response range
topic Neuroscience
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10234427/
https://www.ncbi.nlm.nih.gov/pubmed/37275778
http://dx.doi.org/10.3389/fncel.2023.1155406
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