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Incubator-independent cell-culture perfusion platform for continuous long-term microelectrode array electrophysiology and time-lapse imaging

Most in vitro electrophysiology studies extract information and draw conclusions from representative, temporally limited snapshot experiments. This approach bears the risk of missing decisive moments that may make a difference in our understanding of physiological events. This feasibility study pres...

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Autores principales: Saalfrank, Dirk, Konduri, Anil Krishna, Latifi, Shahrzad, Habibey, Rouhollah, Golabchi, Asiyeh, Martiniuc, Aurel Vasile, Knoll, Alois, Ingebrandt, Sven, Blau, Axel
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society Publishing 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4632545/
https://www.ncbi.nlm.nih.gov/pubmed/26543581
http://dx.doi.org/10.1098/rsos.150031
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author Saalfrank, Dirk
Konduri, Anil Krishna
Latifi, Shahrzad
Habibey, Rouhollah
Golabchi, Asiyeh
Martiniuc, Aurel Vasile
Knoll, Alois
Ingebrandt, Sven
Blau, Axel
author_facet Saalfrank, Dirk
Konduri, Anil Krishna
Latifi, Shahrzad
Habibey, Rouhollah
Golabchi, Asiyeh
Martiniuc, Aurel Vasile
Knoll, Alois
Ingebrandt, Sven
Blau, Axel
author_sort Saalfrank, Dirk
collection PubMed
description Most in vitro electrophysiology studies extract information and draw conclusions from representative, temporally limited snapshot experiments. This approach bears the risk of missing decisive moments that may make a difference in our understanding of physiological events. This feasibility study presents a simple benchtop cell-culture perfusion system adapted to commercial microelectrode arrays (MEAs), multichannel electrophysiology equipment and common inverted microscopy stages for simultaneous and uninterrupted extracellular electrophysiology and time-lapse imaging at ambient CO(2) levels. The concept relies on a transparent, replica-casted polydimethylsiloxane perfusion cap, gravity- or syringe-pump-driven perfusion and preconditioning of pH-buffered serum-free cell-culture medium to ambient CO(2) levels at physiological temperatures. The low-cost microfluidic in vitro enabling platform, which allows us to image cultures immediately after cell plating, is easy to reproduce and is adaptable to the geometries of different cell-culture containers. It permits the continuous and simultaneous multimodal long-term acquisition or manipulation of optical and electrophysiological parameter sets, thereby considerably widening the range of experimental possibilities. Two exemplary proof-of-concept long-term MEA studies on hippocampal networks illustrate system performance. Continuous extracellular recordings over a period of up to 70 days revealed details on both sudden and gradual neural activity changes in maturing cell ensembles with large intra-day fluctuations. Correlated time-lapse imaging unveiled rather static macroscopic network architectures with previously unreported local morphological oscillations on the timescale of minutes.
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spelling pubmed-46325452015-11-05 Incubator-independent cell-culture perfusion platform for continuous long-term microelectrode array electrophysiology and time-lapse imaging Saalfrank, Dirk Konduri, Anil Krishna Latifi, Shahrzad Habibey, Rouhollah Golabchi, Asiyeh Martiniuc, Aurel Vasile Knoll, Alois Ingebrandt, Sven Blau, Axel R Soc Open Sci Structural Biology and Biophysics Most in vitro electrophysiology studies extract information and draw conclusions from representative, temporally limited snapshot experiments. This approach bears the risk of missing decisive moments that may make a difference in our understanding of physiological events. This feasibility study presents a simple benchtop cell-culture perfusion system adapted to commercial microelectrode arrays (MEAs), multichannel electrophysiology equipment and common inverted microscopy stages for simultaneous and uninterrupted extracellular electrophysiology and time-lapse imaging at ambient CO(2) levels. The concept relies on a transparent, replica-casted polydimethylsiloxane perfusion cap, gravity- or syringe-pump-driven perfusion and preconditioning of pH-buffered serum-free cell-culture medium to ambient CO(2) levels at physiological temperatures. The low-cost microfluidic in vitro enabling platform, which allows us to image cultures immediately after cell plating, is easy to reproduce and is adaptable to the geometries of different cell-culture containers. It permits the continuous and simultaneous multimodal long-term acquisition or manipulation of optical and electrophysiological parameter sets, thereby considerably widening the range of experimental possibilities. Two exemplary proof-of-concept long-term MEA studies on hippocampal networks illustrate system performance. Continuous extracellular recordings over a period of up to 70 days revealed details on both sudden and gradual neural activity changes in maturing cell ensembles with large intra-day fluctuations. Correlated time-lapse imaging unveiled rather static macroscopic network architectures with previously unreported local morphological oscillations on the timescale of minutes. The Royal Society Publishing 2015-06-17 /pmc/articles/PMC4632545/ /pubmed/26543581 http://dx.doi.org/10.1098/rsos.150031 Text en http://creativecommons.org/licenses/by/4.0/ © 2015 The Authors. Published by the Royal Society under the terms of the Creative Commons Attribution License http://creativecommons.org/licenses/by/4.0/, which permits unrestricted use, provided the original author and source are credited.
spellingShingle Structural Biology and Biophysics
Saalfrank, Dirk
Konduri, Anil Krishna
Latifi, Shahrzad
Habibey, Rouhollah
Golabchi, Asiyeh
Martiniuc, Aurel Vasile
Knoll, Alois
Ingebrandt, Sven
Blau, Axel
Incubator-independent cell-culture perfusion platform for continuous long-term microelectrode array electrophysiology and time-lapse imaging
title Incubator-independent cell-culture perfusion platform for continuous long-term microelectrode array electrophysiology and time-lapse imaging
title_full Incubator-independent cell-culture perfusion platform for continuous long-term microelectrode array electrophysiology and time-lapse imaging
title_fullStr Incubator-independent cell-culture perfusion platform for continuous long-term microelectrode array electrophysiology and time-lapse imaging
title_full_unstemmed Incubator-independent cell-culture perfusion platform for continuous long-term microelectrode array electrophysiology and time-lapse imaging
title_short Incubator-independent cell-culture perfusion platform for continuous long-term microelectrode array electrophysiology and time-lapse imaging
title_sort incubator-independent cell-culture perfusion platform for continuous long-term microelectrode array electrophysiology and time-lapse imaging
topic Structural Biology and Biophysics
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4632545/
https://www.ncbi.nlm.nih.gov/pubmed/26543581
http://dx.doi.org/10.1098/rsos.150031
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