Angotzi Gian Nicola, Giantomasi Lidia, Ribeiro Joao F, Crepaldi Marco, Vincenzi Matteo, Zito Domenico, Berdondini Luca
Microtechnology for Neuroelectronics Laboratory, Fondazione Istituto Italiano di Tecnologia, Genova, Italy.
Electronic Design Laboratory, Fondazione Istituto Italiano di Tecnologia, Genova, Italy.
Front Neurosci. 2022 Apr 26;16:842265. doi: 10.3389/fnins.2022.842265. eCollection 2022.
Advancements in stem cell technology together with an improved understanding of organogenesis have enabled new routes that exploit cell-autonomous self-organization responses of adult stem cells (ASCs) and homogenous pluripotent stem cells (PSCs) to grow complex, three-dimensional (3D), mini-organ like structures on demand, the so-called organoids. Conventional optical and electrical neurophysiological techniques to acquire functional data from brain organoids, however, are not adequate for chronic recordings of neural activity from these model systems, and are not ideal approaches for throughput screenings applied to drug discovery. To overcome these issues, new emerging approaches aim at fusing sensing mechanisms and/or actuating artificial devices within organoids. Here we introduce and develop the concept of the (LIO) technology for in-tissue sensing and actuation within 3D cell aggregates. This challenging technology grounds on the self-aggregation of brain cells and on integrated bioelectronic micro-scale devices to provide an advanced tool for generating 3D biological brain models with in-tissue artificial functionalities adapted for routine, label-free functional measurements and for assay's development. We complete previously reported results on the implementation of the integrated self-standing wireless silicon micro-devices with experiments aiming at investigating the impact on neuronal spheroids of sinusoidal electro-magnetic fields as those required for wireless power and data transmission. Finally, we discuss the technology headway and future perspectives.
干细胞技术的进步以及对器官发生的深入理解,开启了新的途径,可利用成体干细胞(ASC)和同质性多能干细胞(PSC)的细胞自主自组织反应,按需培育复杂的三维(3D)、类似微型器官的结构,即所谓的类器官。然而,用于从脑类器官获取功能数据的传统光学和电神经生理学技术,并不适用于对这些模型系统的神经活动进行长期记录,也不是应用于药物发现的高通量筛选的理想方法。为克服这些问题,新出现的方法旨在将传感机制和/或驱动人工装置融入类器官中。在此,我们引入并开发了用于三维细胞聚集体组织内传感与驱动的(LIO)技术概念。这一具有挑战性的技术基于脑细胞的自聚集以及集成生物电子微尺度装置,为生成具有组织内人工功能的三维生物脑模型提供了一种先进工具,适用于常规的无标记功能测量和检测开发。我们结合先前报道的关于集成自立式无线硅微器件实施的结果,开展实验,旨在研究正弦电磁场(如无线电力和数据传输所需的电磁场)对神经元球体的影响。最后,我们讨论了该技术的进展和未来前景。