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Action potential propagation imaged with high temporal resolution near-infrared video microscopy and polarized light

机译:用高时间分辨率近红外视频显微镜和偏振光成像的动作电位传播

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摘要

To identify the neural constituents responsible for generating polarized light changes, we created spatially resolved movies of propagating action potentials from stimulated lobster leg nerves using both reflection and transmission imaging modalities. Changes in light polarization are associated with membrane depolarization and provide sub-millisecond temporal resolution. Typically, signals are detected using light transmitted through tissue; however, because we eventually would like to apply polarization techniques in-vivo, reflected light is required. In transmission mode, the optical signal was largest throughout the center of the nerve, suggesting that most of the optical signal arose from the inner nerve bundle. In reflection mode, polarization changes were largest near the edges, suggesting that most of the optical signal arose from the outer sheath. In support of these observations, an optical model of the tissue showed that the outer sheath is more reflective while the inner nerve bundle is more transmissive. In order to apply these techniques in-vivo, we must consider that brain tissue does not have a regular orientation of processes as in the lobster nerve. We tested the effect of randomizing cell orientation by tying the nerve in an overhand knot prior to imaging, producing polarization changes that can be imaged even without regular cell orientations.
机译:为了确定负责产生偏振光变化的神经成分,我们使用反射和透射成像方法从受刺激的龙虾腿神经创建了空间分辨的电影,这些电影的动作电位来自受刺激的龙虾腿神经。光偏振的变化与膜的去偏振有关,并提供亚毫秒级的时间分辨率。通常,使用通过组织透射的光来检测信号。但是,由于我们最终希望在体内应用偏振技术,因此需要反射光。在传输模式下,整个神经中心的光信号最大,这表明大部分光信号来自神经内束。在反射模式下,偏振变化在边缘附近最大,表明大部分光信号来自外部护套。为了支持这些观察,组织的光学模型显示,外鞘的反射性更高,而内神经束的透射性更高。为了在体内应用这些技术,我们必须考虑到大脑组织没有像在龙虾神经中那样具有规则的过程方向。我们通过在成像之前将神经绑在一个过度打结上来测试随机化细胞取向的效果,产生极化变化,即使没有规则的细胞取向也可以成像。

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