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用于脑球体和工程类器官的三维多功能神经接口

Three-dimensional, multifunctional neural interfaces for cortical spheroids and engineered assembloids.

机构信息

Querrey Simpson Institute for Bioelectronics, Northwestern University, Evanston, IL 60208, USA.

Center for Bio-Integrated Electronics, Northwestern University, Evanston, IL 60208, USA.

出版信息

Sci Adv. 2021 Mar 17;7(12). doi: 10.1126/sciadv.abf9153. Print 2021 Mar.

Abstract

Three-dimensional (3D), submillimeter-scale constructs of neural cells, known as cortical spheroids, are of rapidly growing importance in biological research because these systems reproduce complex features of the brain in vitro. Despite their great potential for studies of neurodevelopment and neurological disease modeling, 3D living objects cannot be studied easily using conventional approaches to neuromodulation, sensing, and manipulation. Here, we introduce classes of microfabricated 3D frameworks as compliant, multifunctional neural interfaces to spheroids and to assembloids. Electrical, optical, chemical, and thermal interfaces to cortical spheroids demonstrate some of the capabilities. Complex architectures and high-resolution features highlight the design versatility. Detailed studies of the spreading of coordinated bursting events across the surface of an isolated cortical spheroid and of the cascade of processes associated with formation and regrowth of bridging tissues across a pair of such spheroids represent two of the many opportunities in basic neuroscience research enabled by these platforms.

摘要

三维(3D)、亚毫米尺度的神经细胞结构,称为皮质球体,在生物研究中变得越来越重要,因为这些系统在体外再现了大脑的复杂特征。尽管它们在神经发育和神经疾病建模研究中有很大的潜力,但使用传统的神经调节、传感和操作方法很难研究 3D 活体物体。在这里,我们介绍了几类微加工的 3D 框架,作为对球体和组装体的顺应性多功能神经接口。皮质球体的电、光、化学和热接口展示了一些功能。复杂的架构和高分辨率的特点突出了设计的多功能性。对单个皮质球体表面协调爆发事件传播的详细研究,以及与一对这样的球体之间桥接组织形成和再生相关的一系列过程的级联,代表了这些平台在基础神经科学研究中带来的众多机会之一。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4ad7/7968849/e1a78af1732b/abf9153-F1.jpg

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