Xu Shumao, Momin Marzia, Ahmed Salahuddin, Hossain Arafat, Veeramuthu Loganathan, Pandiyan Archana, Kuo Chi-Ching, Zhou Tao
Department of Engineering Science and Mechanics, Center for Neural Engineering, The Pennsylvania State University, Pennsylvania, 16802, USA.
Department of Electrical Engineering, The Pennsylvania State University, Pennsylvania, 16802, USA.
Adv Mater. 2023 Oct;35(42):e2303267. doi: 10.1002/adma.202303267. Epub 2023 Sep 19.
Optogenetic modulation of brain neural activity that combines optical and electrical modes in a unitary neural system has recently gained robust momentum. Controlling illumination spatial coverage, designing light-activated modulators, and developing wireless light delivery and data transmission are crucial for maximizing the use of optical neuromodulation. To this end, biocompatible electrodes with enhanced optoelectrical performance, device integration for multiplexed addressing, wireless transmission, and multimodal operation in soft systems have been developed. This review provides an outlook for uniformly illuminating large brain areas while spatiotemporally imaging the neural responses upon optoelectrical stimulation with little artifacts. Representative concepts and important breakthroughs, such as head-mounted illumination, multiple implanted optical fibers, and micro-light-delivery devices, are discussed. Examples of techniques that incorporate electrophysiological monitoring and optoelectrical stimulation are presented. Challenges and perspectives are posed for further research efforts toward high-density optoelectrical neural interface modulation, with the potential for nonpharmacological neurological disease treatments and wireless optoelectrical stimulation.
在单一神经系统中结合光学和电学模式的脑神经元活动光遗传学调制最近获得了强劲的发展势头。控制光照空间覆盖范围、设计光激活调制器以及开发无线光传输和数据传输对于最大限度地利用光学神经调制至关重要。为此,已经开发出具有增强光电性能的生物相容性电极、用于软系统中多路复用寻址、无线传输和多模态操作的设备集成。本综述展望了在以很少伪影对光电刺激后的神经反应进行时空成像的同时,均匀照亮大脑大区域的前景。讨论了代表性概念和重要突破,如头戴式照明、多根植入光纤和微光传输设备。还介绍了结合电生理监测和光电刺激的技术示例。针对高密度光电神经接口调制的进一步研究工作提出了挑战和展望,其具有非药物性神经疾病治疗和无线光电刺激的潜力。