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用于片上脑生物技术的电生理读出工具。

Electrophysiology Read-Out Tools for Brain-on-Chip Biotechnology.

作者信息

Forro Csaba, Caron Davide, Angotzi Gian Nicola, Gallo Vincenzo, Berdondini Luca, Santoro Francesca, Palazzolo Gemma, Panuccio Gabriella

机构信息

Tissue Electronics, Fondazione Istituto Italiano di Tecnologia, Largo Barsanti e Matteucci, 53 - 80125 Napoli, Italy.

Department of Chemistry, Stanford University, Stanford, CA 94305, USA.

出版信息

Micromachines (Basel). 2021 Jan 24;12(2):124. doi: 10.3390/mi12020124.

Abstract

Brain-on-Chip (BoC) biotechnology is emerging as a promising tool for biomedical and pharmaceutical research applied to the neurosciences. At the convergence between lab-on-chip and cell biology, BoC couples in vitro three-dimensional brain-like systems to an engineered microfluidics platform designed to provide an in vivo-like extrinsic microenvironment with the aim of replicating tissue- or organ-level physiological functions. BoC therefore offers the advantage of an in vitro reproduction of brain structures that is more faithful to the native correlate than what is obtained with conventional cell culture techniques. As brain function ultimately results in the generation of electrical signals, electrophysiology techniques are paramount for studying brain activity in health and disease. However, as BoC is still in its infancy, the availability of combined BoC-electrophysiology platforms is still limited. Here, we summarize the available biological substrates for BoC, starting with a historical perspective. We then describe the available tools enabling BoC electrophysiology studies, detailing their fabrication process and technical features, along with their advantages and limitations. We discuss the current and future applications of BoC electrophysiology, also expanding to complementary approaches. We conclude with an evaluation of the potential translational applications and prospective technology developments.

摘要

脑芯片(BoC)生物技术正在成为神经科学领域生物医学和药物研究的一种有前途的工具。在芯片实验室和细胞生物学的交叉点上,脑芯片将体外三维类脑系统与一个经过工程设计的微流控平台相结合,该平台旨在提供类似体内的外部微环境,以复制组织或器官水平的生理功能。因此,脑芯片具有体外再现脑结构的优势,比传统细胞培养技术所获得的结果更接近天然对照物。由于脑功能最终会产生电信号,电生理技术对于研究健康和疾病状态下的脑活动至关重要。然而,由于脑芯片仍处于起步阶段,结合脑芯片和电生理的平台仍然有限。在这里,我们从历史角度出发,总结了用于脑芯片的可用生物底物。然后,我们描述了用于脑芯片电生理研究的可用工具,详细介绍了它们的制造过程和技术特点,以及它们的优点和局限性。我们讨论了脑芯片电生理的当前和未来应用,还扩展到了互补方法。最后,我们对潜在的转化应用和未来技术发展进行了评估。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/150d/7912435/fb2d9a48e384/micromachines-12-00124-g001.jpg

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