Biophysical characteristics reveal neural stem cell differentiation potential.

Distinguishing human neural stem/progenitor cell (huNSPC) populations that will predominantly generate neurons from those that produce glia is currently hampered by a lack of sufficient cell type-specific surface markers predictive of fate potential. This limits investigation of lineage-biased proge...

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Main Authors: Fatima H Labeed, Jente Lu, Hayley J Mulhall, Steve A Marchenko, Kai F Hoettges, Laura C Estrada, Abraham P Lee, Michael P Hughes, Lisa A Flanagan
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2011-01-01
Series:PLoS ONE
Online Access:http://europepmc.org/articles/PMC3184132?pdf=render
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spelling doaj-1d3b041e9cd24a5e95e115a924892c6d2020-11-25T02:40:41ZengPublic Library of Science (PLoS)PLoS ONE1932-62032011-01-0169e2545810.1371/journal.pone.0025458Biophysical characteristics reveal neural stem cell differentiation potential.Fatima H LabeedJente LuHayley J MulhallSteve A MarchenkoKai F HoettgesLaura C EstradaAbraham P LeeMichael P HughesLisa A FlanaganDistinguishing human neural stem/progenitor cell (huNSPC) populations that will predominantly generate neurons from those that produce glia is currently hampered by a lack of sufficient cell type-specific surface markers predictive of fate potential. This limits investigation of lineage-biased progenitors and their potential use as therapeutic agents. A live-cell biophysical and label-free measure of fate potential would solve this problem by obviating the need for specific cell surface markers.We used dielectrophoresis (DEP) to analyze the biophysical, specifically electrophysiological, properties of cortical human and mouse NSPCs that vary in differentiation potential. Our data demonstrate that the electrophysiological property membrane capacitance inversely correlates with the neurogenic potential of NSPCs. Furthermore, as huNSPCs are continually passaged they decrease neuron generation and increase membrane capacitance, confirming that this parameter dynamically predicts and negatively correlates with neurogenic potential. In contrast, differences in membrane conductance between NSPCs do not consistently correlate with the ability of the cells to generate neurons. DEP crossover frequency, which is a quantitative measure of cell behavior in DEP, directly correlates with neuron generation of NSPCs, indicating a potential mechanism to separate stem cells biased to particular differentiated cell fates.We show here that whole cell membrane capacitance, but not membrane conductance, reflects and predicts the neurogenic potential of human and mouse NSPCs. Stem cell biophysical characteristics therefore provide a completely novel and quantitative measure of stem cell fate potential and a label-free means to identify neuron- or glial-biased progenitors.http://europepmc.org/articles/PMC3184132?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author Fatima H Labeed
Jente Lu
Hayley J Mulhall
Steve A Marchenko
Kai F Hoettges
Laura C Estrada
Abraham P Lee
Michael P Hughes
Lisa A Flanagan
spellingShingle Fatima H Labeed
Jente Lu
Hayley J Mulhall
Steve A Marchenko
Kai F Hoettges
Laura C Estrada
Abraham P Lee
Michael P Hughes
Lisa A Flanagan
Biophysical characteristics reveal neural stem cell differentiation potential.
PLoS ONE
author_facet Fatima H Labeed
Jente Lu
Hayley J Mulhall
Steve A Marchenko
Kai F Hoettges
Laura C Estrada
Abraham P Lee
Michael P Hughes
Lisa A Flanagan
author_sort Fatima H Labeed
title Biophysical characteristics reveal neural stem cell differentiation potential.
title_short Biophysical characteristics reveal neural stem cell differentiation potential.
title_full Biophysical characteristics reveal neural stem cell differentiation potential.
title_fullStr Biophysical characteristics reveal neural stem cell differentiation potential.
title_full_unstemmed Biophysical characteristics reveal neural stem cell differentiation potential.
title_sort biophysical characteristics reveal neural stem cell differentiation potential.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2011-01-01
description Distinguishing human neural stem/progenitor cell (huNSPC) populations that will predominantly generate neurons from those that produce glia is currently hampered by a lack of sufficient cell type-specific surface markers predictive of fate potential. This limits investigation of lineage-biased progenitors and their potential use as therapeutic agents. A live-cell biophysical and label-free measure of fate potential would solve this problem by obviating the need for specific cell surface markers.We used dielectrophoresis (DEP) to analyze the biophysical, specifically electrophysiological, properties of cortical human and mouse NSPCs that vary in differentiation potential. Our data demonstrate that the electrophysiological property membrane capacitance inversely correlates with the neurogenic potential of NSPCs. Furthermore, as huNSPCs are continually passaged they decrease neuron generation and increase membrane capacitance, confirming that this parameter dynamically predicts and negatively correlates with neurogenic potential. In contrast, differences in membrane conductance between NSPCs do not consistently correlate with the ability of the cells to generate neurons. DEP crossover frequency, which is a quantitative measure of cell behavior in DEP, directly correlates with neuron generation of NSPCs, indicating a potential mechanism to separate stem cells biased to particular differentiated cell fates.We show here that whole cell membrane capacitance, but not membrane conductance, reflects and predicts the neurogenic potential of human and mouse NSPCs. Stem cell biophysical characteristics therefore provide a completely novel and quantitative measure of stem cell fate potential and a label-free means to identify neuron- or glial-biased progenitors.
url http://europepmc.org/articles/PMC3184132?pdf=render
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