z-logo
open-access-imgOpen Access
Toward a modular, integrated, miniaturized, and portable microfluidic flow control architecture for organs-on-chips applications
Author(s) -
Gürhan Özkayar,
Joost Conrad Lötters,
Marcel Tichem,
Murali Krishna Ghatkesar
Publication year - 2022
Publication title -
biomicrofluidics
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.634
H-Index - 63
ISSN - 1932-1058
DOI - 10.1063/5.0074156
Subject(s) - microfluidics , modular design , software portability , computer science , miniaturization , flow control (data) , component (thermodynamics) , flow (mathematics) , embedded system , nanotechnology , materials science , physics , geometry , mathematics , thermodynamics , programming language , operating system , computer network
Microfluidic organs-on-chips (OoCs) technology has emerged as the trend for in vitro functional modeling of organs in recent years. Simplifying the complexities of the human organs under controlled perfusion of required fluids paves the way for accurate prediction of human organ functionalities and their response to interventions like exposure to drugs. However, in the state-of-the-art OoC, the existing methods to control fluids use external bulky peripheral components and systems much larger than the chips used in experiments. A new generation of compact microfluidic flow control systems is needed to overcome this challenge. This study first presents a structured classification of OoC devices according to their types and microfluidic complexities. Next, we suggest three fundamental fluid flow control mechanisms and define component configurations for different levels of OoC complexity for each respective mechanism. Finally, we propose an architecture integrating modular microfluidic flow control components and OoC devices on a single platform. We emphasize the need for miniaturization of flow control components to achieve portability, minimize sample usage, minimize dead volume, improve the flowing time of fluids to the OoC cell chamber, and enable long-duration experiments.

The content you want is available to Zendy users.

Already have an account? Click here to sign in.
Having issues? You can contact us here
Accelerating Research

Address

John Eccles House
Robert Robinson Avenue,
Oxford Science Park, Oxford
OX4 4GP, United Kingdom