Department of Biomedical Engineering, Tianjin University, 92 Weijin Road, Tianjin, 300072, China.
Research Center for Augmented Intelligence, Research Institute of Artificial Intelligence, Zhejiang Laboratory, Hangzhou, 311100, China.
Small. 2023 Sep;19(39):e2302241. doi: 10.1002/smll.202302241. Epub 2023 Jun 1.
Precisely delivering light to multiple locations in biological tissue is crucial for advancing multiregional optogenetics in neuroscience research. However, conventional implantable devices typically have rigid geometries and limited light sources, allowing only single or dual probe placement with fixed spacing. Here, a fully flexible optogenetic device with multiple thin-film microscale light-emitting diode (µ-LED) displays scattering from a central controller is presented. Each display is heterogeneously integrated with thin-film 5 × 10 µ-LEDs and five optical fibers 125 µm in diameter to achieve cellular-scale spatial resolution. Meanwhile, the device boasts a compact, flexible circuit capable of multichannel configuration and wireless transmission, with an overall weight of 1.31 g, enabling wireless, real-time neuromodulation of freely moving rats. Characterization results and finite element analysis have demonstrated excellent optical properties and mechanical stability, while cytotoxicity tests further ensure the biocompatibility of the device for implantable applications. Behavior studies under optogenetic modulation indicate great promise for wirelessly modulating neural functions in freely moving animals. The device with multisite and multiregional optogenetic modulation capability offers a comprehensive platform to advance both fundamental neuroscience studies and potential applications in brain-computer interfaces.
精确地将光传输到生物组织的多个位置对于推进神经科学研究中的多区域光遗传学至关重要。然而,传统的可植入设备通常具有刚性的几何形状和有限的光源,只能进行单或双探头放置,且探头之间的间距固定。在这里,我们提出了一种具有多个薄膜微尺度发光二极管(µ-LED)显示器的完全灵活的光遗传学设备,这些显示器从中央控制器散射。每个显示器都与薄膜 5×10µ-LED 和五个直径为 125µm 的光纤异质集成,以实现细胞尺度的空间分辨率。同时,该设备具有紧凑、灵活的电路,可实现多通道配置和无线传输,总重量为 1.31g,可对自由移动的大鼠进行无线、实时神经调节。特性分析和有限元分析结果表明,该设备具有优异的光学性能和机械稳定性,而细胞毒性测试进一步确保了该设备在可植入应用中的生物相容性。在光遗传学调节下的行为研究表明,该设备在无线调节自由动物的神经功能方面具有巨大的应用潜力。该设备具有多部位和多区域光遗传学调节能力,为推进基础神经科学研究和脑机接口等潜在应用提供了一个综合平台。