A 3D-Printed Oxygen Control Insert for a 24-Well Plate.
3D printing has emerged as a method for directly printing complete microfluidic devices, although printing materials have been limited to oxygen-impermeable materials. We demonstrate the addition of gas permeable PDMS (Polydimethylsiloxane) membranes to 3D-printed microfluidic devices as a means to...
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2015-01-01
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doaj-5129b6c4ace34330a01f674c38fbfc1a2020-11-25T01:52:38ZengPublic Library of Science (PLoS)PLoS ONE1932-62032015-01-01109e013763110.1371/journal.pone.0137631A 3D-Printed Oxygen Control Insert for a 24-Well Plate.Martin D BrennanMegan L Rexius-HallDavid T Eddington3D printing has emerged as a method for directly printing complete microfluidic devices, although printing materials have been limited to oxygen-impermeable materials. We demonstrate the addition of gas permeable PDMS (Polydimethylsiloxane) membranes to 3D-printed microfluidic devices as a means to enable oxygen control cell culture studies. The incorporation of a 3D-printed device and gas-permeable membranes was demonstrated on a 24-well oxygen control device for standard multiwell plates. The direct printing allows integrated distribution channels and device geometries not possible with traditional planar lithography. With this device, four different oxygen conditions were able to be controlled, and six wells were maintained under each oxygen condition. We demonstrate enhanced transcription of the gene VEGFA (vascular endothelial growth factor A) with decreasing oxygen levels in human lung adenocarcinoma cells. This is the first 3D-printed device incorporating gas permeable membranes to facilitate oxygen control in cell culture.http://europepmc.org/articles/PMC4567345?pdf=render |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Martin D Brennan Megan L Rexius-Hall David T Eddington |
spellingShingle |
Martin D Brennan Megan L Rexius-Hall David T Eddington A 3D-Printed Oxygen Control Insert for a 24-Well Plate. PLoS ONE |
author_facet |
Martin D Brennan Megan L Rexius-Hall David T Eddington |
author_sort |
Martin D Brennan |
title |
A 3D-Printed Oxygen Control Insert for a 24-Well Plate. |
title_short |
A 3D-Printed Oxygen Control Insert for a 24-Well Plate. |
title_full |
A 3D-Printed Oxygen Control Insert for a 24-Well Plate. |
title_fullStr |
A 3D-Printed Oxygen Control Insert for a 24-Well Plate. |
title_full_unstemmed |
A 3D-Printed Oxygen Control Insert for a 24-Well Plate. |
title_sort |
3d-printed oxygen control insert for a 24-well plate. |
publisher |
Public Library of Science (PLoS) |
series |
PLoS ONE |
issn |
1932-6203 |
publishDate |
2015-01-01 |
description |
3D printing has emerged as a method for directly printing complete microfluidic devices, although printing materials have been limited to oxygen-impermeable materials. We demonstrate the addition of gas permeable PDMS (Polydimethylsiloxane) membranes to 3D-printed microfluidic devices as a means to enable oxygen control cell culture studies. The incorporation of a 3D-printed device and gas-permeable membranes was demonstrated on a 24-well oxygen control device for standard multiwell plates. The direct printing allows integrated distribution channels and device geometries not possible with traditional planar lithography. With this device, four different oxygen conditions were able to be controlled, and six wells were maintained under each oxygen condition. We demonstrate enhanced transcription of the gene VEGFA (vascular endothelial growth factor A) with decreasing oxygen levels in human lung adenocarcinoma cells. This is the first 3D-printed device incorporating gas permeable membranes to facilitate oxygen control in cell culture. |
url |
http://europepmc.org/articles/PMC4567345?pdf=render |
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