Cargando…

Microfluidic platform for three-dimensional cell culture under spatiotemporal heterogeneity of oxygen tension

Cells in a tumor microenvironment are exposed to spatial and temporal variations in oxygen tension due to hyperproliferation and immature vascularization. Such spatiotemporal oxygen heterogeneity affects the behavior of cancer cells, leading to cancer growth and metastasis, and thus, it is essential...

Descripción completa

Detalles Bibliográficos
Autores principales: Koens, Rei, Tabata, Yugo, Serrano, Jean C., Aratake, Satoshi, Yoshino, Daisuke, Kamm, Roger D., Funamoto, Kenichi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: AIP Publishing LLC 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7060087/
https://www.ncbi.nlm.nih.gov/pubmed/32161836
http://dx.doi.org/10.1063/1.5127069
_version_ 1783504164413767680
author Koens, Rei
Tabata, Yugo
Serrano, Jean C.
Aratake, Satoshi
Yoshino, Daisuke
Kamm, Roger D.
Funamoto, Kenichi
author_facet Koens, Rei
Tabata, Yugo
Serrano, Jean C.
Aratake, Satoshi
Yoshino, Daisuke
Kamm, Roger D.
Funamoto, Kenichi
author_sort Koens, Rei
collection PubMed
description Cells in a tumor microenvironment are exposed to spatial and temporal variations in oxygen tension due to hyperproliferation and immature vascularization. Such spatiotemporal oxygen heterogeneity affects the behavior of cancer cells, leading to cancer growth and metastasis, and thus, it is essential to clarify the cellular responses of cancer cells to oxygen tension. Herein, we describe a new double-layer microfluidic device allowing the control of oxygen tension and the behavior of cancer cells under spatiotemporal oxygen heterogeneity. Two parallel gas channels were located above the media and gel channels to enhance gas exchange, and a gas-impermeable polycarbonate film was embedded in the device to prevent the diffusion of atmospheric oxygen. Variations in oxygen tension in the device with the experimental parameters and design variables were investigated computationally and validated by using oxygen-sensitive nanoparticles. The present device can generate a uniform hypoxic condition at oxygen levels down to 0.3% O(2), as well as a linear oxygen gradient from 3% O(2) to 17% O(2) across the gel channel within 15 min. Moreover, human breast cancer cells suspended in type I collagen gel were introduced in the gel channel to observe their response under controlled oxygen tension. Hypoxic exposure activated the proliferation and motility of the cells, which showed a local maximum increase at 5% O(2). Under the oxygen gradient condition, the increase in the cell number was relatively high in the central mild hypoxia region. These findings demonstrate the utility of the present device to study cellular responses in an oxygen-controlled microenvironment.
format Online
Article
Text
id pubmed-7060087
institution National Center for Biotechnology Information
language English
publishDate 2020
publisher AIP Publishing LLC
record_format MEDLINE/PubMed
spelling pubmed-70600872020-03-11 Microfluidic platform for three-dimensional cell culture under spatiotemporal heterogeneity of oxygen tension Koens, Rei Tabata, Yugo Serrano, Jean C. Aratake, Satoshi Yoshino, Daisuke Kamm, Roger D. Funamoto, Kenichi APL Bioeng Articles Cells in a tumor microenvironment are exposed to spatial and temporal variations in oxygen tension due to hyperproliferation and immature vascularization. Such spatiotemporal oxygen heterogeneity affects the behavior of cancer cells, leading to cancer growth and metastasis, and thus, it is essential to clarify the cellular responses of cancer cells to oxygen tension. Herein, we describe a new double-layer microfluidic device allowing the control of oxygen tension and the behavior of cancer cells under spatiotemporal oxygen heterogeneity. Two parallel gas channels were located above the media and gel channels to enhance gas exchange, and a gas-impermeable polycarbonate film was embedded in the device to prevent the diffusion of atmospheric oxygen. Variations in oxygen tension in the device with the experimental parameters and design variables were investigated computationally and validated by using oxygen-sensitive nanoparticles. The present device can generate a uniform hypoxic condition at oxygen levels down to 0.3% O(2), as well as a linear oxygen gradient from 3% O(2) to 17% O(2) across the gel channel within 15 min. Moreover, human breast cancer cells suspended in type I collagen gel were introduced in the gel channel to observe their response under controlled oxygen tension. Hypoxic exposure activated the proliferation and motility of the cells, which showed a local maximum increase at 5% O(2). Under the oxygen gradient condition, the increase in the cell number was relatively high in the central mild hypoxia region. These findings demonstrate the utility of the present device to study cellular responses in an oxygen-controlled microenvironment. AIP Publishing LLC 2020-03-06 /pmc/articles/PMC7060087/ /pubmed/32161836 http://dx.doi.org/10.1063/1.5127069 Text en © 2020 Author(s). 2473-2877/2020/4(1)/016106/11 All article content, except where otherwise noted, is licensed under a Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Articles
Koens, Rei
Tabata, Yugo
Serrano, Jean C.
Aratake, Satoshi
Yoshino, Daisuke
Kamm, Roger D.
Funamoto, Kenichi
Microfluidic platform for three-dimensional cell culture under spatiotemporal heterogeneity of oxygen tension
title Microfluidic platform for three-dimensional cell culture under spatiotemporal heterogeneity of oxygen tension
title_full Microfluidic platform for three-dimensional cell culture under spatiotemporal heterogeneity of oxygen tension
title_fullStr Microfluidic platform for three-dimensional cell culture under spatiotemporal heterogeneity of oxygen tension
title_full_unstemmed Microfluidic platform for three-dimensional cell culture under spatiotemporal heterogeneity of oxygen tension
title_short Microfluidic platform for three-dimensional cell culture under spatiotemporal heterogeneity of oxygen tension
title_sort microfluidic platform for three-dimensional cell culture under spatiotemporal heterogeneity of oxygen tension
topic Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7060087/
https://www.ncbi.nlm.nih.gov/pubmed/32161836
http://dx.doi.org/10.1063/1.5127069
work_keys_str_mv AT koensrei microfluidicplatformforthreedimensionalcellcultureunderspatiotemporalheterogeneityofoxygentension
AT tabatayugo microfluidicplatformforthreedimensionalcellcultureunderspatiotemporalheterogeneityofoxygentension
AT serranojeanc microfluidicplatformforthreedimensionalcellcultureunderspatiotemporalheterogeneityofoxygentension
AT aratakesatoshi microfluidicplatformforthreedimensionalcellcultureunderspatiotemporalheterogeneityofoxygentension
AT yoshinodaisuke microfluidicplatformforthreedimensionalcellcultureunderspatiotemporalheterogeneityofoxygentension
AT kammrogerd microfluidicplatformforthreedimensionalcellcultureunderspatiotemporalheterogeneityofoxygentension
AT funamotokenichi microfluidicplatformforthreedimensionalcellcultureunderspatiotemporalheterogeneityofoxygentension