Microfluidic device with brain extracellular matrix promotes structural and functional maturation of human brain organoids

Author:

Cho Ann-NaORCID,Jin Yoonhee,An Yeonjoo,Kim JinORCID,Choi Yi SunORCID,Lee Jung Seung,Kim Junghoon,Choi Won-Young,Koo Dong-Jun,Yu Weonjin,Chang Gyeong-Eon,Kim Dong-Yoon,Jo Sung-Hyun,Kim Jihun,Kim Sung-YonORCID,Kim Yun-Gon,Kim Ju Young,Choi NakwonORCID,Cheong EunjiORCID,Kim Young-Joon,Je Hyunsoo Shawn,Kang Hoon-Chul,Cho Seung-WooORCID

Abstract

AbstractBrain organoids derived from human pluripotent stem cells provide a highly valuable in vitro model to recapitulate human brain development and neurological diseases. However, the current systems for brain organoid culture require further improvement for the reliable production of high-quality organoids. Here, we demonstrate two engineering elements to improve human brain organoid culture, (1) a human brain extracellular matrix to provide brain-specific cues and (2) a microfluidic device with periodic flow to improve the survival and reduce the variability of organoids. A three-dimensional culture modified with brain extracellular matrix significantly enhanced neurogenesis in developing brain organoids from human induced pluripotent stem cells. Cortical layer development, volumetric augmentation, and electrophysiological function of human brain organoids were further improved in a reproducible manner by dynamic culture in microfluidic chamber devices. Our engineering concept of reconstituting brain-mimetic microenvironments facilitates the development of a reliable culture platform for brain organoids, enabling effective modeling and drug development for human brain diseases.

Funder

National Research Foundation of Korea

Institute for Basic Science

Samsung

Publisher

Springer Science and Business Media LLC

Subject

General Physics and Astronomy,General Biochemistry, Genetics and Molecular Biology,General Chemistry

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