类有机物
微流控
悬浮培养
悬挂(拓扑)
3d打印
纳米技术
细胞生物学
细胞培养
化学
生物
材料科学
生物医学工程
工程类
数学
遗传学
同伦
纯数学
作者
Mário Kandra,Tereza Váňová,Vincent Alexander Jongen,Jakub Pospíšil,Josef Novák,Václav Chochola,Tomáš Buryška,Zbyněk Prokop,Zdeněk Hodný,Aleš Hampl,Dáša Bohačiaková,Josef Jaroš
标识
DOI:10.1002/biot.202400240
摘要
The development of 3D organoids has provided a valuable tool for studying human tissue and organ development in vitro. Cerebral organoids, in particular, offer a unique platform for investigating neural diseases. However, current methods for generating cerebral organoids suffer from limitations such as labor-intensive protocols and high heterogeneity among organoids. To address these challenges, we present a microfluidic device designed to automate and streamline the formation and differentiation of cerebral organoids. The device utilizes microwells with two different shapes to promote the formation of a single aggregate per well and incorporates continuous medium flow for optimal nutrient exchange. In silico simulations supported the effectiveness of the microfluidic chip in replicating cellular microenvironments. Our results demonstrate that the microfluidic chip enables uniform growth of cerebral organoids, significantly reducing the hands-on time required for maintenance. Importantly, the performance of the microfluidic system is comparable to the standard 96-well plate format even when using half the amount of culture medium, and the resulting organoids exhibit substantially developed neuroepithelial buds and cortical structures. This study highlights the potential of custom-designed microfluidic technology in improving the efficiency of cerebral organoid culture.
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