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Hybrid Upconversion Nanomaterials for Optogenetic Neuronal Control

机译:用于光遗传神经元控制的混合上转换纳米材料。

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摘要

Nanotechnology-based approaches offer the chemical control required to develop precision tools suitable for applications in neuroscience. We report a novel approach employing hybrid upconversion nanomaterials, combined with the photoresponsive ion channel channelrhodopsin-2 (ChR2), to achieve near infrared light (NIR)-mediated optogenetic control of neuronal activity. Current optogenetic methodologies rely on using visible light (e.g. 470-nm blue light), which tends to exhibit high scattering and low tissue penetration, to activate ChR2. In contrast, our approach enables the use of 980-nm NIR light, which addresses the short-comings of visible light as an excitation source. This was facilitated by embedding upconversion nanomaterials, which can convert NIR light to blue luminescence, into polymeric scaffolds. These hybrid nanomaterial scaffolds allowed for NIR-mediated neuronal stimulation, with comparable efficiency as that of 470-nm blue light. Our platform was optimized for NIR-mediated optogenetic control by balancing multiple physicochemical properties of the nanomaterial (e.g. size, morphology, structure, emission spectra, concentration), thus providing an early demonstration of rationally-designing nanomaterial-based strategies for advanced neural applications.
机译:基于纳米技术的方法提供了开发适用于神经科学应用的精密工具所需的化学控制。我们报告了一种新的方法,采用混合上转换纳米材料,结合光响应离子通道通道视紫红质2(ChR2),以实现近红外光(NIR)介导的神经元活动的光遗传学控制。当前的光遗传学方法依赖于使用趋于表现出高散射和低组织穿透的可见光(例如470nm的蓝光)来激活ChR2。相比之下,我们的方法可以使用980 nm NIR光,它解决了可见光作为激发源的缺点。通过将可将NIR光转换为蓝色发光的上转换纳米材料嵌入聚合物支架中,可以促进这一过程。这些杂合的纳米材料支架允许NIR介导的神经元刺激,其效率与470 nm蓝光相当。我们的平台针对NIR介导的光遗传学控制进行了优化,通过平衡纳米材料的多种物理化学特性(例如大小,形态,结构,发射光谱,浓度),从而为合理设计基于纳米材料的高级神经应用策略提供了早期证明。

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