Automated spatio-temporal analysis of dendritic spines and related protein dynamics.

Cofilin and other Actin-regulating proteins are essential in regulating the shape of dendritic spines, which are sites of neuronal communications in the brain, and their malfunctions are implicated in neurodegeneration related to aging. The analysis of cofilin motility in dendritic spines using fluo...

Full description

Bibliographic Details
Main Authors: Vincent On, Atena Zahedi, Iryna M Ethell, Bir Bhanu
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2017-01-01
Series:PLoS ONE
Online Access:http://europepmc.org/articles/PMC5565271?pdf=render
id doaj-e52ead0c17094dbf8ee42ca0414396c4
record_format Article
spelling doaj-e52ead0c17094dbf8ee42ca0414396c42020-11-25T01:42:18ZengPublic Library of Science (PLoS)PLoS ONE1932-62032017-01-01128e018295810.1371/journal.pone.0182958Automated spatio-temporal analysis of dendritic spines and related protein dynamics.Vincent OnAtena ZahediIryna M EthellBir BhanuCofilin and other Actin-regulating proteins are essential in regulating the shape of dendritic spines, which are sites of neuronal communications in the brain, and their malfunctions are implicated in neurodegeneration related to aging. The analysis of cofilin motility in dendritic spines using fluorescence video-microscopy may allow for the discovery of its effects on synaptic functions. To date, the flow of cofilin has not been analyzed by automatic means. This paper presents Dendrite Protein Analysis (DendritePA), a novel automated pattern recognition software to analyze protein trafficking in neurons. Using spatiotemporal information present in multichannel fluorescence videos, the DendritePA generates a temporal maximum intensity projection that enhances the signal-to-noise ratio of important biological structures, segments and tracks dendritic spines, estimates the density of proteins in spines, and analyzes the flux of proteins through the dendrite/spine boundary. The motion of a dendritic spine is used to generate spine energy images, which are used to automatically classify the shape of common dendritic spines such as stubby, mushroom, or thin. By tracking dendritic spines over time and using their intensity profiles, the system can analyze the flux patterns of cofilin and other fluorescently stained proteins. The cofilin flux patterns are found to correlate with the dynamic changes in dendritic spine shapes. Our results also have shown that the activation of cofilin using genetic manipulations leads to immature spines while its inhibition results in an increase in mature spines.http://europepmc.org/articles/PMC5565271?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author Vincent On
Atena Zahedi
Iryna M Ethell
Bir Bhanu
spellingShingle Vincent On
Atena Zahedi
Iryna M Ethell
Bir Bhanu
Automated spatio-temporal analysis of dendritic spines and related protein dynamics.
PLoS ONE
author_facet Vincent On
Atena Zahedi
Iryna M Ethell
Bir Bhanu
author_sort Vincent On
title Automated spatio-temporal analysis of dendritic spines and related protein dynamics.
title_short Automated spatio-temporal analysis of dendritic spines and related protein dynamics.
title_full Automated spatio-temporal analysis of dendritic spines and related protein dynamics.
title_fullStr Automated spatio-temporal analysis of dendritic spines and related protein dynamics.
title_full_unstemmed Automated spatio-temporal analysis of dendritic spines and related protein dynamics.
title_sort automated spatio-temporal analysis of dendritic spines and related protein dynamics.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2017-01-01
description Cofilin and other Actin-regulating proteins are essential in regulating the shape of dendritic spines, which are sites of neuronal communications in the brain, and their malfunctions are implicated in neurodegeneration related to aging. The analysis of cofilin motility in dendritic spines using fluorescence video-microscopy may allow for the discovery of its effects on synaptic functions. To date, the flow of cofilin has not been analyzed by automatic means. This paper presents Dendrite Protein Analysis (DendritePA), a novel automated pattern recognition software to analyze protein trafficking in neurons. Using spatiotemporal information present in multichannel fluorescence videos, the DendritePA generates a temporal maximum intensity projection that enhances the signal-to-noise ratio of important biological structures, segments and tracks dendritic spines, estimates the density of proteins in spines, and analyzes the flux of proteins through the dendrite/spine boundary. The motion of a dendritic spine is used to generate spine energy images, which are used to automatically classify the shape of common dendritic spines such as stubby, mushroom, or thin. By tracking dendritic spines over time and using their intensity profiles, the system can analyze the flux patterns of cofilin and other fluorescently stained proteins. The cofilin flux patterns are found to correlate with the dynamic changes in dendritic spine shapes. Our results also have shown that the activation of cofilin using genetic manipulations leads to immature spines while its inhibition results in an increase in mature spines.
url http://europepmc.org/articles/PMC5565271?pdf=render
work_keys_str_mv AT vincenton automatedspatiotemporalanalysisofdendriticspinesandrelatedproteindynamics
AT atenazahedi automatedspatiotemporalanalysisofdendriticspinesandrelatedproteindynamics
AT irynamethell automatedspatiotemporalanalysisofdendriticspinesandrelatedproteindynamics
AT birbhanu automatedspatiotemporalanalysisofdendriticspinesandrelatedproteindynamics
_version_ 1725037390838366208