Design, characterization and experimental validation of a compact, flexible pulsed power architecture for ex vivo platelet activation.
Electric pulses can induce various changes in cell dynamics and properties depending upon pulse parameters; however, pulsed power generators for in vitro and ex vivo applications may have little to no flexibility in changing the pulse duration, rise- and fall-times, or pulse shape. We outline a comp...
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doaj-4dda3d14f89c4d8cb6b3e84562d306032020-11-25T01:20:09ZengPublic Library of Science (PLoS)PLoS ONE1932-62032017-01-01127e018121410.1371/journal.pone.0181214Design, characterization and experimental validation of a compact, flexible pulsed power architecture for ex vivo platelet activation.Allen L GarnerAntonio CaiafaYan JiangSteve KlopmanChristine MortonAndrew S TorresAmanda M LovelessV Bogdan NeculaesElectric pulses can induce various changes in cell dynamics and properties depending upon pulse parameters; however, pulsed power generators for in vitro and ex vivo applications may have little to no flexibility in changing the pulse duration, rise- and fall-times, or pulse shape. We outline a compact pulsed power architecture that operates from hundreds of nanoseconds (with the potential for modification to tens of nanoseconds) to tens of microseconds by modifying a Marx topology via controlling switch sequences and voltages into each capacitor stage. We demonstrate that this device can deliver pulses to both low conductivity buffers, like standard pulsed power supplies used for electroporation, and higher conductivity solutions, such as blood and platelet rich plasma. We further test the effectiveness of this pulse generator for biomedical applications by successfully activating platelets ex vivo with 400 ns and 600 ns electric pulses. This novel bioelectrics platform may provide researchers with unprecedented flexibility to explore a wide range of pulse parameters that may induce phenomena ranging from intracellular to plasma membrane manipulation.http://europepmc.org/articles/PMC5528997?pdf=render |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Allen L Garner Antonio Caiafa Yan Jiang Steve Klopman Christine Morton Andrew S Torres Amanda M Loveless V Bogdan Neculaes |
spellingShingle |
Allen L Garner Antonio Caiafa Yan Jiang Steve Klopman Christine Morton Andrew S Torres Amanda M Loveless V Bogdan Neculaes Design, characterization and experimental validation of a compact, flexible pulsed power architecture for ex vivo platelet activation. PLoS ONE |
author_facet |
Allen L Garner Antonio Caiafa Yan Jiang Steve Klopman Christine Morton Andrew S Torres Amanda M Loveless V Bogdan Neculaes |
author_sort |
Allen L Garner |
title |
Design, characterization and experimental validation of a compact, flexible pulsed power architecture for ex vivo platelet activation. |
title_short |
Design, characterization and experimental validation of a compact, flexible pulsed power architecture for ex vivo platelet activation. |
title_full |
Design, characterization and experimental validation of a compact, flexible pulsed power architecture for ex vivo platelet activation. |
title_fullStr |
Design, characterization and experimental validation of a compact, flexible pulsed power architecture for ex vivo platelet activation. |
title_full_unstemmed |
Design, characterization and experimental validation of a compact, flexible pulsed power architecture for ex vivo platelet activation. |
title_sort |
design, characterization and experimental validation of a compact, flexible pulsed power architecture for ex vivo platelet activation. |
publisher |
Public Library of Science (PLoS) |
series |
PLoS ONE |
issn |
1932-6203 |
publishDate |
2017-01-01 |
description |
Electric pulses can induce various changes in cell dynamics and properties depending upon pulse parameters; however, pulsed power generators for in vitro and ex vivo applications may have little to no flexibility in changing the pulse duration, rise- and fall-times, or pulse shape. We outline a compact pulsed power architecture that operates from hundreds of nanoseconds (with the potential for modification to tens of nanoseconds) to tens of microseconds by modifying a Marx topology via controlling switch sequences and voltages into each capacitor stage. We demonstrate that this device can deliver pulses to both low conductivity buffers, like standard pulsed power supplies used for electroporation, and higher conductivity solutions, such as blood and platelet rich plasma. We further test the effectiveness of this pulse generator for biomedical applications by successfully activating platelets ex vivo with 400 ns and 600 ns electric pulses. This novel bioelectrics platform may provide researchers with unprecedented flexibility to explore a wide range of pulse parameters that may induce phenomena ranging from intracellular to plasma membrane manipulation. |
url |
http://europepmc.org/articles/PMC5528997?pdf=render |
work_keys_str_mv |
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