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A Markovian Entropy Measure for the Analysis of Calcium Activity Time Series

Methods to analyze the dynamics of calcium activity often rely on visually distinguishable features in time series data such as spikes, waves, or oscillations. However, systems such as the developing nervous system display a complex, irregular type of calcium activity which makes the use of such met...

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Autores principales: Marken, John P., Halleran, Andrew D., Rahman, Atiqur, Odorizzi, Laura, LeFew, Michael C., Golino, Caroline A., Kemper, Peter, Saha, Margaret S.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5158058/
https://www.ncbi.nlm.nih.gov/pubmed/27977764
http://dx.doi.org/10.1371/journal.pone.0168342
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author Marken, John P.
Halleran, Andrew D.
Rahman, Atiqur
Odorizzi, Laura
LeFew, Michael C.
Golino, Caroline A.
Kemper, Peter
Saha, Margaret S.
author_facet Marken, John P.
Halleran, Andrew D.
Rahman, Atiqur
Odorizzi, Laura
LeFew, Michael C.
Golino, Caroline A.
Kemper, Peter
Saha, Margaret S.
author_sort Marken, John P.
collection PubMed
description Methods to analyze the dynamics of calcium activity often rely on visually distinguishable features in time series data such as spikes, waves, or oscillations. However, systems such as the developing nervous system display a complex, irregular type of calcium activity which makes the use of such methods less appropriate. Instead, for such systems there exists a class of methods (including information theoretic, power spectral, and fractal analysis approaches) which use more fundamental properties of the time series to analyze the observed calcium dynamics. We present a new analysis method in this class, the Markovian Entropy measure, which is an easily implementable calcium time series analysis method which represents the observed calcium activity as a realization of a Markov Process and describes its dynamics in terms of the level of predictability underlying the transitions between the states of the process. We applied our and other commonly used calcium analysis methods on a dataset from Xenopus laevis neural progenitors which displays irregular calcium activity and a dataset from murine synaptic neurons which displays activity time series that are well-described by visually-distinguishable features. We find that the Markovian Entropy measure is able to distinguish between biologically distinct populations in both datasets, and that it can separate biologically distinct populations to a greater extent than other methods in the dataset exhibiting irregular calcium activity. These results support the benefit of using the Markovian Entropy measure to analyze calcium dynamics, particularly for studies using time series data which do not exhibit easily distinguishable features.
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spelling pubmed-51580582016-12-21 A Markovian Entropy Measure for the Analysis of Calcium Activity Time Series Marken, John P. Halleran, Andrew D. Rahman, Atiqur Odorizzi, Laura LeFew, Michael C. Golino, Caroline A. Kemper, Peter Saha, Margaret S. PLoS One Research Article Methods to analyze the dynamics of calcium activity often rely on visually distinguishable features in time series data such as spikes, waves, or oscillations. However, systems such as the developing nervous system display a complex, irregular type of calcium activity which makes the use of such methods less appropriate. Instead, for such systems there exists a class of methods (including information theoretic, power spectral, and fractal analysis approaches) which use more fundamental properties of the time series to analyze the observed calcium dynamics. We present a new analysis method in this class, the Markovian Entropy measure, which is an easily implementable calcium time series analysis method which represents the observed calcium activity as a realization of a Markov Process and describes its dynamics in terms of the level of predictability underlying the transitions between the states of the process. We applied our and other commonly used calcium analysis methods on a dataset from Xenopus laevis neural progenitors which displays irregular calcium activity and a dataset from murine synaptic neurons which displays activity time series that are well-described by visually-distinguishable features. We find that the Markovian Entropy measure is able to distinguish between biologically distinct populations in both datasets, and that it can separate biologically distinct populations to a greater extent than other methods in the dataset exhibiting irregular calcium activity. These results support the benefit of using the Markovian Entropy measure to analyze calcium dynamics, particularly for studies using time series data which do not exhibit easily distinguishable features. Public Library of Science 2016-12-15 /pmc/articles/PMC5158058/ /pubmed/27977764 http://dx.doi.org/10.1371/journal.pone.0168342 Text en © 2016 Marken et al http://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Marken, John P.
Halleran, Andrew D.
Rahman, Atiqur
Odorizzi, Laura
LeFew, Michael C.
Golino, Caroline A.
Kemper, Peter
Saha, Margaret S.
A Markovian Entropy Measure for the Analysis of Calcium Activity Time Series
title A Markovian Entropy Measure for the Analysis of Calcium Activity Time Series
title_full A Markovian Entropy Measure for the Analysis of Calcium Activity Time Series
title_fullStr A Markovian Entropy Measure for the Analysis of Calcium Activity Time Series
title_full_unstemmed A Markovian Entropy Measure for the Analysis of Calcium Activity Time Series
title_short A Markovian Entropy Measure for the Analysis of Calcium Activity Time Series
title_sort markovian entropy measure for the analysis of calcium activity time series
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5158058/
https://www.ncbi.nlm.nih.gov/pubmed/27977764
http://dx.doi.org/10.1371/journal.pone.0168342
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