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Optical Stimulation of Neurons

机译:神经元的光学刺激

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Our capacity to interface with the nervous system remains overwhelmingly reliant on electrical stimulation devices, such as electrode arrays and cuff electrodes that can stimulate both central and peripheral nervous systems. However, electrical stimulation has to deal with multiple challenges, including selectivity, spatial resolution, mechanical stability, implant-induced injury and the subsequent inflammatory response. Optical stimulation techniques may avoid some of these challenges by providing more selective stimulation, higher spatial resolution and reduced invasiveness of the device, while also avoiding the electrical artefacts that complicate recordings of electrically stimulated neuronal activity. This review explores the current status of optical stimulation techniques, including optogenetic methods, photoactive molecule approaches and infrared neural stimulation, together with emerging techniques such as hybrid optical-electrical stimulation, nanoparticle enhanced stimulation and optoelectric methods. Infrared neural stimulation is particularly emphasised, due to the potential for direct activation of neural tissue by infrared light, as opposed to techniques that rely on the introduction of exogenous light responsive materials. However, infrared neural stimulation remains imperfectly understood, and techniques for accurately delivering light are still under development. While the various techniques reviewed here confirm the overall feasibility of optical stimulation, a number of challenges remain to be overcome before they can deliver their full potential.
机译:我们与神经系统对接的能力仍然极其依赖于电刺激设备,例如可以刺激中枢和周围神经系统的电极阵列和袖带电极。然而,电刺激必须应对多种挑战,包括选择性,空间分辨率,机械稳定性,植入物诱导的损伤以及随后的炎症反应。光学刺激技术可通过提供更多的选择性刺激,更高的空间分辨率和减少的设备侵入性来避免这些挑战中的某些挑战,同时还避免使电刺激的神经元活动的记录复杂化的电伪像。这篇综述探讨了光刺激技术的现状,包括光遗传学方法,光敏分子方法和红外神经刺激,以及新兴技术,例如混合光电刺激,纳米粒子增强刺激和光电方法。与依赖于引入外源光响应性材料的技术相反,由于红外光可能直接激活神经组织,因此特别强调了红外神经刺激。然而,红外神经刺激仍然没有被完全理解,并且准确地传递光的技术仍在开发中。尽管这里回顾的各种技术证实了光刺激的总体可行性,但是在发挥全部潜能之前,仍有许多挑战需要克服。

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