OOCHIP: Compartmentalized Microfluidic Perfusion System with Porous Barriers for Enhanced Cell-Cell Crosstalk in Organ-on-a-Chip

Improved in vitro models of human organs for predicting drug efficacy, interactions, and disease modelling are crucially needed to minimize the use of animal models, which inevitably display significant differences from the human disease state and metabolism. Inside the body, cells are organized eit...

Full description

Bibliographic Details
Main Authors: Qasem Ramadan, Sajay Bhuvanendran Nair Gourikutty, Qing Xin Zhang
Format: Article
Language:English
Published: MDPI AG 2020-05-01
Series:Micromachines
Subjects:
Online Access:https://www.mdpi.com/2072-666X/11/6/565
id doaj-70617dc2feac4b779d34e01a24314f31
record_format Article
spelling doaj-70617dc2feac4b779d34e01a24314f312020-11-25T02:52:33ZengMDPI AGMicromachines2072-666X2020-05-011156556510.3390/mi11060565OOCHIP: Compartmentalized Microfluidic Perfusion System with Porous Barriers for Enhanced Cell-Cell Crosstalk in Organ-on-a-ChipQasem Ramadan0Sajay Bhuvanendran Nair Gourikutty1Qing Xin Zhang2Agency for Science, Technology and Research, 2 Fusionopolis Way, #08-02, Innovis Tower, Singapore 138635, SingaporeAgency for Science, Technology and Research, 2 Fusionopolis Way, #08-02, Innovis Tower, Singapore 138635, SingaporeAgency for Science, Technology and Research, 2 Fusionopolis Way, #08-02, Innovis Tower, Singapore 138635, SingaporeImproved in vitro models of human organs for predicting drug efficacy, interactions, and disease modelling are crucially needed to minimize the use of animal models, which inevitably display significant differences from the human disease state and metabolism. Inside the body, cells are organized either in direct contact or in close proximity to other cell types in a tightly controlled architecture that regulates tissue function. To emulate this cellular interface in vitro, an advanced cell culture system is required. In this paper, we describe a set of compartmentalized silicon-based microfluidic chips that enable co-culturing several types of cells in close proximity with enhanced cell-cell interaction. In vivo-like fluid flow into and/or from each compartment, as well as between adjacent compartments, is maintained by micro-engineered porous barriers. This porous structure provides a tool for mimicking the paracrine exchange between cells in the human body. As a demonstrating example, the microfluidic system was tested by culturing human adipose tissue that is infiltrated with immune cells to study the role if the interplay between the two cells in the context of type 2 diabetes. However, the system provides a platform technology for mimicking the structure and function of single- and multi-organ models, which could significantly narrow the gap between in vivo and in vitro conditions.https://www.mdpi.com/2072-666X/11/6/565organ-on-a-chipmicrofluidicscell co-cultureperfusionsilicon
collection DOAJ
language English
format Article
sources DOAJ
author Qasem Ramadan
Sajay Bhuvanendran Nair Gourikutty
Qing Xin Zhang
spellingShingle Qasem Ramadan
Sajay Bhuvanendran Nair Gourikutty
Qing Xin Zhang
OOCHIP: Compartmentalized Microfluidic Perfusion System with Porous Barriers for Enhanced Cell-Cell Crosstalk in Organ-on-a-Chip
Micromachines
organ-on-a-chip
microfluidics
cell co-culture
perfusion
silicon
author_facet Qasem Ramadan
Sajay Bhuvanendran Nair Gourikutty
Qing Xin Zhang
author_sort Qasem Ramadan
title OOCHIP: Compartmentalized Microfluidic Perfusion System with Porous Barriers for Enhanced Cell-Cell Crosstalk in Organ-on-a-Chip
title_short OOCHIP: Compartmentalized Microfluidic Perfusion System with Porous Barriers for Enhanced Cell-Cell Crosstalk in Organ-on-a-Chip
title_full OOCHIP: Compartmentalized Microfluidic Perfusion System with Porous Barriers for Enhanced Cell-Cell Crosstalk in Organ-on-a-Chip
title_fullStr OOCHIP: Compartmentalized Microfluidic Perfusion System with Porous Barriers for Enhanced Cell-Cell Crosstalk in Organ-on-a-Chip
title_full_unstemmed OOCHIP: Compartmentalized Microfluidic Perfusion System with Porous Barriers for Enhanced Cell-Cell Crosstalk in Organ-on-a-Chip
title_sort oochip: compartmentalized microfluidic perfusion system with porous barriers for enhanced cell-cell crosstalk in organ-on-a-chip
publisher MDPI AG
series Micromachines
issn 2072-666X
publishDate 2020-05-01
description Improved in vitro models of human organs for predicting drug efficacy, interactions, and disease modelling are crucially needed to minimize the use of animal models, which inevitably display significant differences from the human disease state and metabolism. Inside the body, cells are organized either in direct contact or in close proximity to other cell types in a tightly controlled architecture that regulates tissue function. To emulate this cellular interface in vitro, an advanced cell culture system is required. In this paper, we describe a set of compartmentalized silicon-based microfluidic chips that enable co-culturing several types of cells in close proximity with enhanced cell-cell interaction. In vivo-like fluid flow into and/or from each compartment, as well as between adjacent compartments, is maintained by micro-engineered porous barriers. This porous structure provides a tool for mimicking the paracrine exchange between cells in the human body. As a demonstrating example, the microfluidic system was tested by culturing human adipose tissue that is infiltrated with immune cells to study the role if the interplay between the two cells in the context of type 2 diabetes. However, the system provides a platform technology for mimicking the structure and function of single- and multi-organ models, which could significantly narrow the gap between in vivo and in vitro conditions.
topic organ-on-a-chip
microfluidics
cell co-culture
perfusion
silicon
url https://www.mdpi.com/2072-666X/11/6/565
work_keys_str_mv AT qasemramadan oochipcompartmentalizedmicrofluidicperfusionsystemwithporousbarriersforenhancedcellcellcrosstalkinorganonachip
AT sajaybhuvanendrannairgourikutty oochipcompartmentalizedmicrofluidicperfusionsystemwithporousbarriersforenhancedcellcellcrosstalkinorganonachip
AT qingxinzhang oochipcompartmentalizedmicrofluidicperfusionsystemwithporousbarriersforenhancedcellcellcrosstalkinorganonachip
_version_ 1724729147101544448