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A wirelessly controlled implantable LED system for deep brain optogenetic stimulation

机译:用于深部脑光遗传刺激的无线控制植入式LED系统

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摘要

In recent years optogenetics has rapidly become an essential technique in neuroscience. Its temporal and spatial specificity, combined with efficacy in manipulating neuronal activity, are especially useful in studying the behavior of awake behaving animals. Conventional optogenetics, however, requires the use of lasers and optic fibers, which can place considerable restrictions on behavior. Here we combined a wirelessly controlled interface and small implantable light-emitting diode (LED) that allows flexible and precise placement of light source to illuminate any brain area. We tested this wireless LED system in vivo, in transgenic mice expressing channelrhodopsin-2 in striatonigral neurons expressing D1-like dopamine receptors. In all mice tested, we were able to elicit movements reliably. The frequency of twitches induced by high power stimulation is proportional to the frequency of stimulation. At lower power, contraversive turning was observed. Moreover, the implanted LED remains effective over 50 days after surgery, demonstrating the long-term stability of the light source. Our results show that the wireless LED system can be used to manipulate neural activity chronically in behaving mice without impeding natural movements.
机译:近年来,光遗传学已迅速成为神经科学中必不可少的技术。它的时间和空间特异性,结合操纵神经元活动的功效,在研究清醒行为动物的行为时特别有用。然而,常规的光遗传学要求使用激光和光纤,这可能对行为造成很大的限制。在这里,我们将无线控制接口与小型可植入发光二极管(LED)相结合,可灵活,精确地放置光源,以照亮任何大脑区域。我们在表达D1样多巴胺受体的纹状体神经元中表达Channelrhodopsin-2的转基因小鼠体内测试了这种无线LED系统。在所有测试的小鼠中,我们能够可靠地引发运动。高功率刺激引起的抽搐频率与刺激频率成正比。在较低功率下,观察到相反的转向。此外,植入的LED在手术后50天内仍然有效,证明了光源的长期稳定性。我们的结果表明,无线LED系统可用于在行为小鼠中长期操纵神经活动,而不会妨碍自然运动。

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