Cargando…
A high-throughput microfluidic bilayer co-culture platform to study endothelial-pericyte interactions
Microphysiological organ-on-chip models offer the potential to improve the prediction of drug safety and efficacy through recapitulation of human physiological responses. The importance of including multiple cell types within tissue models has been well documented. However, the study of cell interac...
Autores principales: | , , , , , , , , , , , , , , , |
---|---|
Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
Nature Publishing Group UK
2021
|
Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8190127/ https://www.ncbi.nlm.nih.gov/pubmed/34108507 http://dx.doi.org/10.1038/s41598-021-90833-z |
_version_ | 1783705630183260160 |
---|---|
author | Rogers, Miles T. Gard, Ashley L. Gaibler, Robert Mulhern, Thomas J. Strelnikov, Rivka Azizgolshani, Hesham Cain, Brian P. Isenberg, Brett C. Haroutunian, Nerses J. Raustad, Nicole E. Keegan, Philip M. Lech, Matthew P. Tomlinson, Lindsay Borenstein, Jeffrey T. Charest, Joseph L. Williams, Corin |
author_facet | Rogers, Miles T. Gard, Ashley L. Gaibler, Robert Mulhern, Thomas J. Strelnikov, Rivka Azizgolshani, Hesham Cain, Brian P. Isenberg, Brett C. Haroutunian, Nerses J. Raustad, Nicole E. Keegan, Philip M. Lech, Matthew P. Tomlinson, Lindsay Borenstein, Jeffrey T. Charest, Joseph L. Williams, Corin |
author_sort | Rogers, Miles T. |
collection | PubMed |
description | Microphysiological organ-on-chip models offer the potential to improve the prediction of drug safety and efficacy through recapitulation of human physiological responses. The importance of including multiple cell types within tissue models has been well documented. However, the study of cell interactions in vitro can be limited by complexity of the tissue model and throughput of current culture systems. Here, we describe the development of a co-culture microvascular model and relevant assays in a high-throughput thermoplastic organ-on-chip platform, PREDICT96. The system consists of 96 arrayed bilayer microfluidic devices containing retinal microvascular endothelial cells and pericytes cultured on opposing sides of a microporous membrane. Compatibility of the PREDICT96 platform with a variety of quantifiable and scalable assays, including macromolecular permeability, image-based screening, Luminex, and qPCR, is demonstrated. In addition, the bilayer design of the devices allows for channel- or cell type-specific readouts, such as cytokine profiles and gene expression. The microvascular model was responsive to perturbations including barrier disruption, inflammatory stimulation, and fluid shear stress, and our results corroborated the improved robustness of co-culture over endothelial mono-cultures. We anticipate the PREDICT96 platform and adapted assays will be suitable for other complex tissues, including applications to disease models and drug discovery. |
format | Online Article Text |
id | pubmed-8190127 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2021 |
publisher | Nature Publishing Group UK |
record_format | MEDLINE/PubMed |
spelling | pubmed-81901272021-06-10 A high-throughput microfluidic bilayer co-culture platform to study endothelial-pericyte interactions Rogers, Miles T. Gard, Ashley L. Gaibler, Robert Mulhern, Thomas J. Strelnikov, Rivka Azizgolshani, Hesham Cain, Brian P. Isenberg, Brett C. Haroutunian, Nerses J. Raustad, Nicole E. Keegan, Philip M. Lech, Matthew P. Tomlinson, Lindsay Borenstein, Jeffrey T. Charest, Joseph L. Williams, Corin Sci Rep Article Microphysiological organ-on-chip models offer the potential to improve the prediction of drug safety and efficacy through recapitulation of human physiological responses. The importance of including multiple cell types within tissue models has been well documented. However, the study of cell interactions in vitro can be limited by complexity of the tissue model and throughput of current culture systems. Here, we describe the development of a co-culture microvascular model and relevant assays in a high-throughput thermoplastic organ-on-chip platform, PREDICT96. The system consists of 96 arrayed bilayer microfluidic devices containing retinal microvascular endothelial cells and pericytes cultured on opposing sides of a microporous membrane. Compatibility of the PREDICT96 platform with a variety of quantifiable and scalable assays, including macromolecular permeability, image-based screening, Luminex, and qPCR, is demonstrated. In addition, the bilayer design of the devices allows for channel- or cell type-specific readouts, such as cytokine profiles and gene expression. The microvascular model was responsive to perturbations including barrier disruption, inflammatory stimulation, and fluid shear stress, and our results corroborated the improved robustness of co-culture over endothelial mono-cultures. We anticipate the PREDICT96 platform and adapted assays will be suitable for other complex tissues, including applications to disease models and drug discovery. Nature Publishing Group UK 2021-06-09 /pmc/articles/PMC8190127/ /pubmed/34108507 http://dx.doi.org/10.1038/s41598-021-90833-z Text en © The Author(s) 2021 https://creativecommons.org/licenses/by/4.0/Open Access This article is licensed under a Creative Commons Attribution 4.0 International License, which permits use, sharing, adaptation, distribution and reproduction in any medium or format, as long as you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons licence, and indicate if changes were made. The images or other third party material in this article are included in the article's Creative Commons licence, unless indicated otherwise in a credit line to the material. If material is not included in the article's Creative Commons licence and your intended use is not permitted by statutory regulation or exceeds the permitted use, you will need to obtain permission directly from the copyright holder. To view a copy of this licence, visit http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) . |
spellingShingle | Article Rogers, Miles T. Gard, Ashley L. Gaibler, Robert Mulhern, Thomas J. Strelnikov, Rivka Azizgolshani, Hesham Cain, Brian P. Isenberg, Brett C. Haroutunian, Nerses J. Raustad, Nicole E. Keegan, Philip M. Lech, Matthew P. Tomlinson, Lindsay Borenstein, Jeffrey T. Charest, Joseph L. Williams, Corin A high-throughput microfluidic bilayer co-culture platform to study endothelial-pericyte interactions |
title | A high-throughput microfluidic bilayer co-culture platform to study endothelial-pericyte interactions |
title_full | A high-throughput microfluidic bilayer co-culture platform to study endothelial-pericyte interactions |
title_fullStr | A high-throughput microfluidic bilayer co-culture platform to study endothelial-pericyte interactions |
title_full_unstemmed | A high-throughput microfluidic bilayer co-culture platform to study endothelial-pericyte interactions |
title_short | A high-throughput microfluidic bilayer co-culture platform to study endothelial-pericyte interactions |
title_sort | high-throughput microfluidic bilayer co-culture platform to study endothelial-pericyte interactions |
topic | Article |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8190127/ https://www.ncbi.nlm.nih.gov/pubmed/34108507 http://dx.doi.org/10.1038/s41598-021-90833-z |
work_keys_str_mv | AT rogersmilest ahighthroughputmicrofluidicbilayercocultureplatformtostudyendothelialpericyteinteractions AT gardashleyl ahighthroughputmicrofluidicbilayercocultureplatformtostudyendothelialpericyteinteractions AT gaiblerrobert ahighthroughputmicrofluidicbilayercocultureplatformtostudyendothelialpericyteinteractions AT mulhernthomasj ahighthroughputmicrofluidicbilayercocultureplatformtostudyendothelialpericyteinteractions AT strelnikovrivka ahighthroughputmicrofluidicbilayercocultureplatformtostudyendothelialpericyteinteractions AT azizgolshanihesham ahighthroughputmicrofluidicbilayercocultureplatformtostudyendothelialpericyteinteractions AT cainbrianp ahighthroughputmicrofluidicbilayercocultureplatformtostudyendothelialpericyteinteractions AT isenbergbrettc ahighthroughputmicrofluidicbilayercocultureplatformtostudyendothelialpericyteinteractions AT haroutuniannersesj ahighthroughputmicrofluidicbilayercocultureplatformtostudyendothelialpericyteinteractions AT raustadnicolee ahighthroughputmicrofluidicbilayercocultureplatformtostudyendothelialpericyteinteractions AT keeganphilipm ahighthroughputmicrofluidicbilayercocultureplatformtostudyendothelialpericyteinteractions AT lechmatthewp ahighthroughputmicrofluidicbilayercocultureplatformtostudyendothelialpericyteinteractions AT tomlinsonlindsay ahighthroughputmicrofluidicbilayercocultureplatformtostudyendothelialpericyteinteractions AT borensteinjeffreyt ahighthroughputmicrofluidicbilayercocultureplatformtostudyendothelialpericyteinteractions AT charestjosephl ahighthroughputmicrofluidicbilayercocultureplatformtostudyendothelialpericyteinteractions AT williamscorin ahighthroughputmicrofluidicbilayercocultureplatformtostudyendothelialpericyteinteractions AT rogersmilest highthroughputmicrofluidicbilayercocultureplatformtostudyendothelialpericyteinteractions AT gardashleyl highthroughputmicrofluidicbilayercocultureplatformtostudyendothelialpericyteinteractions AT gaiblerrobert highthroughputmicrofluidicbilayercocultureplatformtostudyendothelialpericyteinteractions AT mulhernthomasj highthroughputmicrofluidicbilayercocultureplatformtostudyendothelialpericyteinteractions AT strelnikovrivka highthroughputmicrofluidicbilayercocultureplatformtostudyendothelialpericyteinteractions AT azizgolshanihesham highthroughputmicrofluidicbilayercocultureplatformtostudyendothelialpericyteinteractions AT cainbrianp highthroughputmicrofluidicbilayercocultureplatformtostudyendothelialpericyteinteractions AT isenbergbrettc highthroughputmicrofluidicbilayercocultureplatformtostudyendothelialpericyteinteractions AT haroutuniannersesj highthroughputmicrofluidicbilayercocultureplatformtostudyendothelialpericyteinteractions AT raustadnicolee highthroughputmicrofluidicbilayercocultureplatformtostudyendothelialpericyteinteractions AT keeganphilipm highthroughputmicrofluidicbilayercocultureplatformtostudyendothelialpericyteinteractions AT lechmatthewp highthroughputmicrofluidicbilayercocultureplatformtostudyendothelialpericyteinteractions AT tomlinsonlindsay highthroughputmicrofluidicbilayercocultureplatformtostudyendothelialpericyteinteractions AT borensteinjeffreyt highthroughputmicrofluidicbilayercocultureplatformtostudyendothelialpericyteinteractions AT charestjosephl highthroughputmicrofluidicbilayercocultureplatformtostudyendothelialpericyteinteractions AT williamscorin highthroughputmicrofluidicbilayercocultureplatformtostudyendothelialpericyteinteractions |