通道视紫红质-2活化的空间分辨率优化。

Brain cell biology Pub Date : 2008-08-01 Epub Date: 2008-07-25 DOI:10.1007/s11068-008-9025-8
Philipp Schoenenberger, Asa Grunditz, Tobias Rose, Thomas G Oertner
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引用次数: 50

摘要

在过去的几年中,光门控阳离子通道视紫红质-2 (ChR2)在神经科学中得到了广泛的应用。然而,常用的宽视场照明对细胞刺激的空间选择性较差。我们探索了聚焦激光照明在稀疏转染的海马切片培养中绘制单个神经元光电流的潜力。有趣的是,在最低的激光功率下,光电流感应的空间分辨率最高。通过将光强度调整到神经元的峰值阈值,我们能够以小于30微米的空间选择性触发动作电位。分离海马细胞实验表明,限制空间分辨率的主要因素是ChR2电流密度,而不是激发光的散射。我们得出结论,只有在高ChR2表达水平的细胞中才能实现亚细胞分辨率,并且未来ChR2的改进变体可能会将光电流感应的空间分辨率扩展到单个树突的水平。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Optimizing the spatial resolution of Channelrhodopsin-2 activation.

Over the past few years, the light-gated cation channel Channelrhodopsin-2 (ChR2) has seen a remarkable diversity of applications in neuroscience. However, commonly used wide-field illumination provides poor spatial selectivity for cell stimulation. We explored the potential of focal laser illumination to map photocurrents of individual neurons in sparsely transfected hippocampal slice cultures. Interestingly, the best spatial resolution of photocurrent induction was obtained at the lowest laser power. By adjusting the light intensity to a neuron's spike threshold, we were able to trigger action potentials with a spatial selectivity of less than 30 microm. Experiments with dissociated hippocampal cells suggested that the main factor limiting the spatial resolution was ChR2 current density rather than scattering of the excitation light. We conclude that subcellular resolution can be achieved only in cells with a high ChR2 expression level and that future improved variants of ChR2 are likely to extend the spatial resolution of photocurrent induction to the level of single dendrites.

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