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Effects of Porous Size and Membrane Pattern on Shear Stress Characteristic in Gut-on-a-Chip with Peristalsis Motion

Dynamic gut-on-a-chip platform allows better recreation of the intestinal environment in vitro compared to the traditional static cell culture. However, the underlying mechanism is still not fully discovered. In this study, the shear stress behavior in a gut-on-a-chip device with porous membrane sub...

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Autores principales: Borwornpiyawat, Pannasit, Juntasaro, Ekachai, Aueviriyavit, Sasitorn, Juntasaro, Varangrat, Sripumkhai, Witsaroot, Pattamang, Pattaraluck, Meananeatra, Rattanawan, Kulthong, Kornphimol, Wongwanakul, Ratjika, Khemthongcharoen, Numfon, Atthi, Nithi, Jeamsaksiri, Wutthinan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9865814/
https://www.ncbi.nlm.nih.gov/pubmed/36677084
http://dx.doi.org/10.3390/mi14010022
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author Borwornpiyawat, Pannasit
Juntasaro, Ekachai
Aueviriyavit, Sasitorn
Juntasaro, Varangrat
Sripumkhai, Witsaroot
Pattamang, Pattaraluck
Meananeatra, Rattanawan
Kulthong, Kornphimol
Wongwanakul, Ratjika
Khemthongcharoen, Numfon
Atthi, Nithi
Jeamsaksiri, Wutthinan
author_facet Borwornpiyawat, Pannasit
Juntasaro, Ekachai
Aueviriyavit, Sasitorn
Juntasaro, Varangrat
Sripumkhai, Witsaroot
Pattamang, Pattaraluck
Meananeatra, Rattanawan
Kulthong, Kornphimol
Wongwanakul, Ratjika
Khemthongcharoen, Numfon
Atthi, Nithi
Jeamsaksiri, Wutthinan
author_sort Borwornpiyawat, Pannasit
collection PubMed
description Dynamic gut-on-a-chip platform allows better recreation of the intestinal environment in vitro compared to the traditional static cell culture. However, the underlying mechanism is still not fully discovered. In this study, the shear stress behavior in a gut-on-a-chip device with porous membrane subjected to peristalsis motion is numerically investigated using CFD simulation for three different pore sizes and two pattern layouts. The results reveal that, in the stationary microchannel, the average shear stress on the porous membrane is approximately 15% greater than that of the flat membrane, regardless of the pore size. However, when subjected to cyclic deformation, the porous membrane with smaller pore size experiences stronger variation of shear stress which is ±5.61%, ±10.12% and ±34.45% from its average for the pore diameters of 10 μm, 5 μm and 1 μm, respectively. The shear stress distribution is more consistent in case of the staggered pattern layout while the in-line pattern layout allows for a 32% wider range of shear stress at the identical pore size during a cyclic deformation. These changes in the shear stress caused by peristalsis motion, porous size and membrane pattern could be the key factors that promote cell differentiation in the deforming gut-on-a-chip model.
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spelling pubmed-98658142023-01-22 Effects of Porous Size and Membrane Pattern on Shear Stress Characteristic in Gut-on-a-Chip with Peristalsis Motion Borwornpiyawat, Pannasit Juntasaro, Ekachai Aueviriyavit, Sasitorn Juntasaro, Varangrat Sripumkhai, Witsaroot Pattamang, Pattaraluck Meananeatra, Rattanawan Kulthong, Kornphimol Wongwanakul, Ratjika Khemthongcharoen, Numfon Atthi, Nithi Jeamsaksiri, Wutthinan Micromachines (Basel) Article Dynamic gut-on-a-chip platform allows better recreation of the intestinal environment in vitro compared to the traditional static cell culture. However, the underlying mechanism is still not fully discovered. In this study, the shear stress behavior in a gut-on-a-chip device with porous membrane subjected to peristalsis motion is numerically investigated using CFD simulation for three different pore sizes and two pattern layouts. The results reveal that, in the stationary microchannel, the average shear stress on the porous membrane is approximately 15% greater than that of the flat membrane, regardless of the pore size. However, when subjected to cyclic deformation, the porous membrane with smaller pore size experiences stronger variation of shear stress which is ±5.61%, ±10.12% and ±34.45% from its average for the pore diameters of 10 μm, 5 μm and 1 μm, respectively. The shear stress distribution is more consistent in case of the staggered pattern layout while the in-line pattern layout allows for a 32% wider range of shear stress at the identical pore size during a cyclic deformation. These changes in the shear stress caused by peristalsis motion, porous size and membrane pattern could be the key factors that promote cell differentiation in the deforming gut-on-a-chip model. MDPI 2022-12-22 /pmc/articles/PMC9865814/ /pubmed/36677084 http://dx.doi.org/10.3390/mi14010022 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Borwornpiyawat, Pannasit
Juntasaro, Ekachai
Aueviriyavit, Sasitorn
Juntasaro, Varangrat
Sripumkhai, Witsaroot
Pattamang, Pattaraluck
Meananeatra, Rattanawan
Kulthong, Kornphimol
Wongwanakul, Ratjika
Khemthongcharoen, Numfon
Atthi, Nithi
Jeamsaksiri, Wutthinan
Effects of Porous Size and Membrane Pattern on Shear Stress Characteristic in Gut-on-a-Chip with Peristalsis Motion
title Effects of Porous Size and Membrane Pattern on Shear Stress Characteristic in Gut-on-a-Chip with Peristalsis Motion
title_full Effects of Porous Size and Membrane Pattern on Shear Stress Characteristic in Gut-on-a-Chip with Peristalsis Motion
title_fullStr Effects of Porous Size and Membrane Pattern on Shear Stress Characteristic in Gut-on-a-Chip with Peristalsis Motion
title_full_unstemmed Effects of Porous Size and Membrane Pattern on Shear Stress Characteristic in Gut-on-a-Chip with Peristalsis Motion
title_short Effects of Porous Size and Membrane Pattern on Shear Stress Characteristic in Gut-on-a-Chip with Peristalsis Motion
title_sort effects of porous size and membrane pattern on shear stress characteristic in gut-on-a-chip with peristalsis motion
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9865814/
https://www.ncbi.nlm.nih.gov/pubmed/36677084
http://dx.doi.org/10.3390/mi14010022
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