Huang Qi, Tang Bohao, Romero July Carolina, Yang Yuqian, Elsayed Saifeldeen Khalil, Pahapale Gayatri, Lee Tien-Jung, Morales Pantoja Itzy E, Han Fang, Berlinicke Cynthia, Xiang Terry, Solazzo Mallory, Hartung Thomas, Qin Zhao, Caffo Brian S, Smirnova Lena, Gracias David H
Department of Chemical and Biomolecular Engineering, Johns Hopkins University, Baltimore, MD 21218, USA.
Department of Biostatistics, Bloomberg School of Public Health, Johns Hopkins University, Baltimore, MD 21287, USA.
Sci Adv. 2022 Aug 19;8(33):eabq5031. doi: 10.1126/sciadv.abq5031. Epub 2022 Aug 17.
Brain organoids are important models for mimicking some three-dimensional (3D) cytoarchitectural and functional aspects of the brain. Multielectrode arrays (MEAs) that enable recording and stimulation of activity from electrogenic cells offer notable potential for interrogating brain organoids. However, conventional MEAs, initially designed for monolayer cultures, offer limited recording contact area restricted to the bottom of the 3D organoids. Inspired by the shape of electroencephalography caps, we developed miniaturized wafer-integrated MEA caps for organoids. The optically transparent shells are composed of self-folding polymer leaflets with conductive polymer-coated metal electrodes. Tunable folding of the minicaps' polymer leaflets guided by mechanics simulations enables versatile recording from organoids of different sizes, and we validate the feasibility of electrophysiology recording from 400- to 600-μm-sized organoids for up to 4 weeks and in response to glutamate stimulation. Our studies suggest that 3D shell MEAs offer great potential for high signal-to-noise ratio and 3D spatiotemporal brain organoid recording.
脑类器官是模拟大脑某些三维(3D)细胞结构和功能方面的重要模型。能够记录和刺激电活动细胞活动的多电极阵列(MEA)为研究脑类器官提供了显著的潜力。然而,最初为单层培养设计的传统MEA,其记录接触面积有限,仅限于3D类器官的底部。受脑电图帽形状的启发,我们开发了用于类器官的微型晶圆集成MEA帽。光学透明外壳由带有导电聚合物涂层金属电极的自折叠聚合物薄片组成。通过力学模拟引导微型帽聚合物薄片的可调折叠,能够对不同大小的类器官进行多功能记录,并且我们验证了从400至600μm大小的类器官进行长达4周的电生理记录以及对谷氨酸刺激做出反应的可行性。我们的研究表明,3D外壳MEA在高信噪比和3D时空脑类器官记录方面具有巨大潜力。