School of Electrical Engineering, Korea Advanced Institute of Science and Technology, Daejeon, Republic of Korea.
Department of Physiology, Graduate School of Medical Science, Yonsei University College of Medicine, Seoul, Republic of Korea.
Nat Commun. 2021 Jan 22;12(1):535. doi: 10.1038/s41467-020-20803-y.
Optogenetics is a powerful technique that allows target-specific spatiotemporal manipulation of neuronal activity for dissection of neural circuits and therapeutic interventions. Recent advances in wireless optogenetics technologies have enabled investigation of brain circuits in more natural conditions by releasing animals from tethered optical fibers. However, current wireless implants, which are largely based on battery-powered or battery-free designs, still limit the full potential of in vivo optogenetics in freely moving animals by requiring intermittent battery replacement or a special, bulky wireless power transfer system for continuous device operation, respectively. To address these limitations, here we present a wirelessly rechargeable, fully implantable, soft optoelectronic system that can be remotely and selectively controlled using a smartphone. Combining advantageous features of both battery-powered and battery-free designs, this device system enables seamless full implantation into animals, reliable ubiquitous operation, and intervention-free wireless charging, all of which are desired for chronic in vivo optogenetics. Successful demonstration of the unique capabilities of this device in freely behaving rats forecasts its broad and practical utilities in various neuroscience research and clinical applications.
光遗传学是一种强大的技术,可实现神经元活动的靶向特异性时空操控,用于解析神经回路和治疗干预。最近无线光遗传学技术的进步通过将动物从光纤上解脱出来,使人们能够在更自然的条件下研究大脑回路。然而,目前的无线植入物,主要基于电池供电或无电池设计,仍然通过间歇性更换电池或特殊的、笨重的无线电源传输系统来分别为连续设备运行提供支持,限制了自由活动动物体内光遗传学的全部潜力。为了解决这些限制,我们在这里提出了一种无线可充电、完全可植入的软性光电系统,可以使用智能手机进行远程和选择性控制。该设备系统结合了电池供电和无电池设计的优势,可实现无缝完全植入动物体内、可靠的无处不在的操作和无需干预的无线充电,这些都是慢性体内光遗传学所需要的。该设备在自由活动的大鼠中的成功演示展示了其在各种神经科学研究和临床应用中的广泛实用价值。