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Review

Advances of 3D Cell Co-Culture Technology Based on Microfluidic Chips

1
Engineering Research Center of TCM Intelligence Health Service, School of Artificial Intelligence and Information Technology, Nanjing University of Chinese Medicine, Nanjing 210023, China
2
Department of Clinical Medical Engineering, The First Affiliated Hospital of Nanjing Medical University, Nanjing 210029, China
3
State Key Laboratory of Bioelectronics and Jiangsu Key Laboratory of Biomaterials and Devices, School of Biological Sciences & Medical Engineering, Southeast University, Nanjing 210009, China
*
Authors to whom correspondence should be addressed.
These authors contributed equally to this work.
Biosensors 2024, 14(7), 336; https://doi.org/10.3390/bios14070336
Submission received: 16 April 2024 / Revised: 30 June 2024 / Accepted: 8 July 2024 / Published: 10 July 2024
(This article belongs to the Special Issue Microfluidics for Biomedical Applications (2nd Edition))

Abstract

Cell co-culture technology aims to study the communication mechanism between cells and to better reveal the interactions and regulatory mechanisms involved in processes such as cell growth, differentiation, apoptosis, and other cellular activities. This is achieved by simulating the complex organismic environment. Such studies are of great significance for understanding the physiological and pathological processes of multicellular organisms. As an emerging cell cultivation technology, 3D cell co-culture technology, based on microfluidic chips, can efficiently, rapidly, and accurately achieve cell co-culture. This is accomplished by leveraging the unique microchannel structures and flow characteristics of microfluidic chips. The technology can simulate the native microenvironment of cell growth, providing a new technical platform for studying intercellular communication. It has been widely used in the research of oncology, immunology, neuroscience, and other fields. In this review, we summarize and provide insights into the design of cell co-culture systems on microfluidic chips, the detection methods employed in co-culture systems, and the applications of these models.
Keywords: microchip; co-culture; microfluidic technology; cell cultivation; intercellular communication microchip; co-culture; microfluidic technology; cell cultivation; intercellular communication

Share and Cite

MDPI and ACS Style

Li, C.; He, W.; Song, Y.; Zhang, X.; Sun, J.; Zhou, Z. Advances of 3D Cell Co-Culture Technology Based on Microfluidic Chips. Biosensors 2024, 14, 336. https://doi.org/10.3390/bios14070336

AMA Style

Li C, He W, Song Y, Zhang X, Sun J, Zhou Z. Advances of 3D Cell Co-Culture Technology Based on Microfluidic Chips. Biosensors. 2024; 14(7):336. https://doi.org/10.3390/bios14070336

Chicago/Turabian Style

Li, Can, Wei He, Yihua Song, Xia Zhang, Jianfei Sun, and Zuojian Zhou. 2024. "Advances of 3D Cell Co-Culture Technology Based on Microfluidic Chips" Biosensors 14, no. 7: 336. https://doi.org/10.3390/bios14070336

APA Style

Li, C., He, W., Song, Y., Zhang, X., Sun, J., & Zhou, Z. (2024). Advances of 3D Cell Co-Culture Technology Based on Microfluidic Chips. Biosensors, 14(7), 336. https://doi.org/10.3390/bios14070336

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