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Axonal activity in vivo: technical considerations and implications for the exploration of neural circuits in freely moving animals

机译:体内轴突活性:自由移动动物神经回路探索的技术考虑和意义

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摘要

While extracellular somatic action potentials from freely moving rats have been well characterized, axonal activity has not. We have recently reported extracellular tetrode recordings of short duration waveforms (SDWs) with an average peak-trough duration less than 172 μs. These waveforms have significantly shorter duration than somatic action potentials and tend to be triphasic. The present review discusses further data that suggests SDWs are representative of axonal activity, how this characterization allows for more accurate classification of somatic activity and could serve as a means of exploring signal integration in neural circuits. The review also discusses how axons may function as more than neural cables and the implications this may have for axonal information processing. While the technical challenges necessary for the exploration of axonal processes in functional neural circuits during behavior are impressive, preliminary evidence suggests that the in vivo study of axons is attainable. The resulting theoretical implications for systems level function make refinement of this approach a necessary goal toward developing a more complete understanding of the processes underlying learning, memory and attention as well as the pathological states underlying mental illness and epilepsy.
机译:尽管已经很好地描述了自由运动大鼠的细胞外体细胞动作电位,但轴突活性却没有。我们最近报道了短时波形(SDWs)的细胞外四极体记录,平均峰谷持续时间小于172μs。这些波形的持续时间比躯体动作电位的持续时间短得多,并且往往是三相的。本审查讨论进一步的数据,表明SDWs代表轴突活动,这种表征如何使体细胞活动的更准确的分类,并可以作为探索神经回路中信号整合的手段。这篇综述还讨论了轴突如何比神经电缆发挥更多功能,以及它对轴突信息处理的影响。尽管在行为过程中探索功能性神经回路中的轴突过程所必需的技术挑战令人印象深刻,但初步证据表明,可以进行体内的轴突研究。由此产生的对系统级功能的理论含义使对这种方法的改进成为了对学习,记忆和注意力的基础过程以及精神疾病和癫痫症的病理状态更完整理解的必要目标。

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