实时体内光遗传神经调节和多电极电生理记录。

Frontiers in neuroengineering Pub Date : 2014-10-29 eCollection Date: 2014-01-01 DOI:10.3389/fneng.2014.00040
Nealen G Laxpati, Babak Mahmoudi, Claire-Anne Gutekunst, Jonathan P Newman, Riley Zeller-Townson, Robert E Gross
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引用次数: 41

摘要

光遗传通道极大地扩展了神经科学的实验能力,使清醒和行为动物的神经元亚群的精确遗传靶向和操纵成为可能。然而,这项技术仍然存在许多障碍,包括用于结合光学刺激和电生理记录的低成本和有效的硬件。为了解决这个问题,我们采用了开源的neuroright多通道电生理平台,用于清醒和行为的啮齿动物的开环和闭环刺激实验。在这里,我们介绍了这些具有成本效益的适应性,包括市售LED光源;定制光学卡箍;3D打印卡套硬件和软件,校准和规范输出强度;以及对市售电极阵列的修改,使其能够在近端和远端对记录目标进行刺激。然后,我们在几个开环和闭环实验中展示了这些适应性的能力和多功能性,展示了分析结果的光谱方法,并讨论了刺激的伪影。
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Real-time in vivo optogenetic neuromodulation and multielectrode electrophysiologic recording with NeuroRighter.

Optogenetic channels have greatly expanded neuroscience's experimental capabilities, enabling precise genetic targeting and manipulation of neuron subpopulations in awake and behaving animals. However, many barriers to entry remain for this technology - including low-cost and effective hardware for combined optical stimulation and electrophysiologic recording. To address this, we adapted the open-source NeuroRighter multichannel electrophysiology platform for use in awake and behaving rodents in both open and closed-loop stimulation experiments. Here, we present these cost-effective adaptations, including commercially available LED light sources; custom-made optical ferrules; 3D printed ferrule hardware and software to calibrate and standardize output intensity; and modifications to commercially available electrode arrays enabling stimulation proximally and distally to the recording target. We then demonstrate the capabilities and versatility of these adaptations in several open and closed-loop experiments, demonstrate spectrographic methods of analyzing the results, as well as discuss artifacts of stimulation.

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