School of Medical Technology, Beijing Institute of Technology, Beijing, 100081, China.
Small. 2023 Dec;19(52):e2304427. doi: 10.1002/smll.202304427. Epub 2023 Aug 31.
As an ideal in vitro model, brain-on-chip (BoC) is an important tool to comprehensively elucidate brain characteristics. However, the in vitro model for the definition scope of BoC has not been universally recognized. In this review, BoC is divided into brain cells-on-a- chip, brain slices-on-a-chip, and brain organoids-on-a-chip according to the type of culture on the chip. Although these three microfluidic BoCs are constructed in different ways, they all use microfluidic chips as carrier tools. This method can better meet the needs of maintaining high culture activity on a chip for a long time. Moreover, BoC has successfully integrated cell biology, the biological material platform technology of microenvironment on a chip, manufacturing technology, online detection technology on a chip, and so on, enabling the chip to present structural diversity and high compatibility to meet different experimental needs and expand the scope of applications. Here, the relevant core technologies, challenges, and future development trends of BoC are summarized.
作为一种理想的体外模型,脑芯片(BoC)是全面阐明大脑特征的重要工具。然而,BoC 的体外模型的定义范围尚未得到普遍认可。在这篇综述中,BoC 根据芯片上的培养类型分为芯片上的脑细胞、芯片上的脑切片和芯片上的脑类器官。尽管这三种微流控 BoC 的构建方式不同,但它们都使用微流控芯片作为载体工具。这种方法可以更好地满足在芯片上长时间保持高培养活性的需求。此外,BoC 成功地集成了细胞生物学、微环境的生物材料平台技术、制造技术、芯片上的在线检测技术等,使芯片呈现出结构多样性和高兼容性,以满足不同的实验需求并扩大应用范围。在此,总结了 BoC 的相关核心技术、挑战和未来发展趋势。