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Neural Circuits: Temporally precise control of single-neuron spiking by juxtacellular nanostimulation

机译:神经回路:通过并发细胞纳米刺激暂时精确控制单神经元峰

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摘要

Temporal patterns of action potentials influence a variety of activity-dependent intra- and intercellular processes and play an important role in theories of neural coding. Elucidating the mechanisms underlying these phenomena requires imposing spike trains with precisely defined patterns, but this has been challenging due to the limitations of existing stimulation techniques. Here we present a new nanostimulation method providing control over the action potential output of individual cortical neurons. Spikes are elicited through the juxtacellular application of short-duration fluctuating currents (“kurzpulses”), allowing for the sub-millisecond precise and reproducible induction of arbitrary patterns of action potentials at all physiologically relevant firing frequencies (<120 Hz), including minute-long spike trains recorded in freely moving animals. We systematically compared our method to whole cell current injection, as well as optogenetic stimulation, and show that nanostimulation performance compares favorably with these techniques. This new nanostimulation approach is easily applied, can be readily performed in awake behaving animals, and thus promises to be a powerful tool for systematic investigations into the temporal elements of neural codes, as well as the mechanisms underlying a wide variety of activity-dependent cellular processes.>NEW & NOTEWORTHY Assessing the impact of temporal features of neuronal spike trains requires imposing arbitrary patterns of spiking on individual neurons during behavior, but this has been difficult to achieve due to limitations of existing stimulation methods. We present a technique that overcomes these limitations by using carefully designed short-duration fluctuating juxtacellular current injections, which allow for the precise and reliable evocation of arbitrary patterns of neuronal spikes in single neurons in vivo.
机译:动作电位的时空模式会影响各种活动相关的细胞内和细胞间过程,并在神经编码理论中发挥重要作用。阐明这些现象背后的机制需要施加具有精确定义模式的尖峰序列,但是由于现有刺激技术的局限性,这一直是一个挑战。在这里,我们提出了一种新的纳米刺激方法,该方法可控制单个皮质神经元的动作电位输出。短时脉动电流(“ kurzpulses”)的并发应用会产生尖峰,从而允许在所有生理相关的触发频率(<120 Hz)(包括分钟-分钟)下,以毫秒为单位精确,可再现地感应出动作电位的任意模式。记录在自由移动的动物中的长峰火车。我们系统地比较了我们的方法与全细胞电流注射以及光遗传学刺激,并表明纳米刺激性能与这些技术相比具有优势。这种新的纳米刺激方法易于应用,可以在清醒的行为动物中容易实施,因此有望成为系统研究神经密码的时间要素以及各种依赖于活动的细胞机制的有力工具。 >新的和值得注意的。评估神经元突波序列的时间特征的影响需要在行为过程中对单个神经元施加任意的尖峰模式,但是由于现有刺激方法的限制,很难做到这一点。我们提出了一种技术,通过使用精心设计的短期波动脉动型并列细胞注射技术,克服了这些局限性,该技术可在体内单个神经元中精确可靠地激发神经元突波的任意模式。

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