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Accurate quantification of astrocyte and neurotransmitter fluorescence dynamics for single-cell and population-level physiology

Recent work examining astrocytic physiology centers on fluorescence imaging, due to development of sensitive fluorescent indicators and observation of spatiotemporally complex calcium activity. However, the field remains hindered in characterizing these dynamics, both within single cells and at the...

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Autores principales: Wang, Yizhi, DelRosso, Nicole V., Vaidyanathan, Trisha V., Cahill, Michelle K., Reitman, Michael E., Pittolo, Silvia, Mi, Xuelong, Yu, Guoqiang, Poskanzer, Kira E.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6858541/
https://www.ncbi.nlm.nih.gov/pubmed/31570865
http://dx.doi.org/10.1038/s41593-019-0492-2
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author Wang, Yizhi
DelRosso, Nicole V.
Vaidyanathan, Trisha V.
Cahill, Michelle K.
Reitman, Michael E.
Pittolo, Silvia
Mi, Xuelong
Yu, Guoqiang
Poskanzer, Kira E.
author_facet Wang, Yizhi
DelRosso, Nicole V.
Vaidyanathan, Trisha V.
Cahill, Michelle K.
Reitman, Michael E.
Pittolo, Silvia
Mi, Xuelong
Yu, Guoqiang
Poskanzer, Kira E.
author_sort Wang, Yizhi
collection PubMed
description Recent work examining astrocytic physiology centers on fluorescence imaging, due to development of sensitive fluorescent indicators and observation of spatiotemporally complex calcium activity. However, the field remains hindered in characterizing these dynamics, both within single cells and at the population level, because of the insufficiency of current region-of-interest (ROI)-based approaches to describe activity that is often spatially unfixed, size-varying, and propagative. Here, we present an analytical framework that releases astrocyte biologists from ROI-based tools. The Astrocyte Quantitative Analysis (AQuA) software takes an event-based perspective to model and accurately quantify complex calcium and neurotransmitter activity in fluorescence imaging datasets. We apply AQuA to a range of ex vivo and in vivo imaging data, and uncover novel physiological phenomena. Since AQuA is data-driven and based on machine learning principles, it can be applied across model organisms, fluorescent indicators, experimental modes, and imaging resolutions and speeds, enabling researchers to elucidate fundamental neural physiology.
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spelling pubmed-68585412020-03-30 Accurate quantification of astrocyte and neurotransmitter fluorescence dynamics for single-cell and population-level physiology Wang, Yizhi DelRosso, Nicole V. Vaidyanathan, Trisha V. Cahill, Michelle K. Reitman, Michael E. Pittolo, Silvia Mi, Xuelong Yu, Guoqiang Poskanzer, Kira E. Nat Neurosci Article Recent work examining astrocytic physiology centers on fluorescence imaging, due to development of sensitive fluorescent indicators and observation of spatiotemporally complex calcium activity. However, the field remains hindered in characterizing these dynamics, both within single cells and at the population level, because of the insufficiency of current region-of-interest (ROI)-based approaches to describe activity that is often spatially unfixed, size-varying, and propagative. Here, we present an analytical framework that releases astrocyte biologists from ROI-based tools. The Astrocyte Quantitative Analysis (AQuA) software takes an event-based perspective to model and accurately quantify complex calcium and neurotransmitter activity in fluorescence imaging datasets. We apply AQuA to a range of ex vivo and in vivo imaging data, and uncover novel physiological phenomena. Since AQuA is data-driven and based on machine learning principles, it can be applied across model organisms, fluorescent indicators, experimental modes, and imaging resolutions and speeds, enabling researchers to elucidate fundamental neural physiology. 2019-09-30 2019-11 /pmc/articles/PMC6858541/ /pubmed/31570865 http://dx.doi.org/10.1038/s41593-019-0492-2 Text en Users may view, print, copy, and download text and data-mine the content in such documents, for the purposes of academic research, subject always to the full Conditions of use:http://www.nature.com/authors/editorial_policies/license.html#terms
spellingShingle Article
Wang, Yizhi
DelRosso, Nicole V.
Vaidyanathan, Trisha V.
Cahill, Michelle K.
Reitman, Michael E.
Pittolo, Silvia
Mi, Xuelong
Yu, Guoqiang
Poskanzer, Kira E.
Accurate quantification of astrocyte and neurotransmitter fluorescence dynamics for single-cell and population-level physiology
title Accurate quantification of astrocyte and neurotransmitter fluorescence dynamics for single-cell and population-level physiology
title_full Accurate quantification of astrocyte and neurotransmitter fluorescence dynamics for single-cell and population-level physiology
title_fullStr Accurate quantification of astrocyte and neurotransmitter fluorescence dynamics for single-cell and population-level physiology
title_full_unstemmed Accurate quantification of astrocyte and neurotransmitter fluorescence dynamics for single-cell and population-level physiology
title_short Accurate quantification of astrocyte and neurotransmitter fluorescence dynamics for single-cell and population-level physiology
title_sort accurate quantification of astrocyte and neurotransmitter fluorescence dynamics for single-cell and population-level physiology
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6858541/
https://www.ncbi.nlm.nih.gov/pubmed/31570865
http://dx.doi.org/10.1038/s41593-019-0492-2
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