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对不同速度和角度的胡须偏斜做出反应的桶状细胞的尖峰和兴奋性/抑制性输入动力学。

Spiking and Excitatory/Inhibitory Input Dynamics of Barrel Cells in Response to Whisker Deflections of Varying Velocity and Angular Direction.

机构信息

Department of Mathematics, 200 Ukrop Way, Jones Hall, College of William and Mary, Williamsburg, VA 23187, USA.

出版信息

Neuroscience. 2018 Jan 15;369:15-28. doi: 10.1016/j.neuroscience.2017.10.044. Epub 2017 Nov 6.

DOI:10.1016/j.neuroscience.2017.10.044
PMID:29122591
Abstract

The spiking of barrel regular-spiking (RS) cells is tuned for both whisker deflection direction and velocity. Velocity tuning arises due to thalamocortical (TC) synchrony (but not spike quantity) varying with deflection velocity, coupled with feedforward inhibition, while direction selectivity is not fully understood, though may be due partly to direction tuning of TC spiking. Data show that as deflection direction deviates from the preferred direction of an RS cell, excitatory input to the RS cell diminishes minimally, but temporally shifts to coincide with the time-lagged inhibitory input. This work constructs a realistic large-scale model of a barrel; model RS cells exhibit velocity and direction selectivity due to TC input dynamics, with the experimentally observed sharpening of direction tuning with decreasing velocity. The model puts forth the novel proposal that RS→RS synapses can naturally and simply account for the unexplained direction dependence of RS cell inputs - as deflection direction deviates from the preferred direction of an RS cell, and TC input declines, RS→RS synaptic transmission buffers the decline in total excitatory input and causes a shift in timing of the excitatory input peak from the peak in TC input to the delayed peak in RS input. The model also provides several experimentally testable predictions on the velocity dependence of RS cell inputs. This model is the first, to my knowledge, to study the interaction of direction and velocity and propose physiological mechanisms for the stimulus dependence in the timing and amplitude of RS cell inputs.

摘要

桶状皮层规则放电(RS)细胞的发放频率既与胡须的偏斜方向有关,也与偏斜速度有关。速度调谐是由于丘脑皮层(TC)同步性(而非尖峰数量)随偏斜速度变化,再加上前馈抑制,而方向选择性则不完全清楚,尽管可能部分归因于 TC 发放的方向调谐。数据表明,当胡须的偏斜方向偏离 RS 细胞的最佳方向时,RS 细胞的兴奋性输入最小,但在时间上会转移,与延迟的抑制性输入相吻合。这项工作构建了一个逼真的桶状皮层大规模模型;模型 RS 细胞表现出速度和方向选择性,这是由于 TC 输入动力学,实验观察到的方向调谐随着速度的降低而变锐。该模型提出了一个新颖的观点,即 RS→RS 突触可以自然而简单地解释 RS 细胞输入中未解释的方向依赖性——当胡须的偏斜方向偏离 RS 细胞的最佳方向时,TC 输入下降,RS→RS 突触传递缓冲了总兴奋性输入的下降,并导致兴奋性输入峰值的时间从 TC 输入的峰值转移到 RS 输入的延迟峰值。该模型还对 RS 细胞输入的速度依赖性提出了几个可在实验中验证的预测。据我所知,这个模型是第一个研究方向和速度的相互作用,并提出生理机制来解释 RS 细胞输入的时间和幅度对刺激的依赖性的模型。

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引用本文的文献

1
Effects of Adaptation on Discrimination of Whisker Deflection Velocity and Angular Direction in a Model of the Barrel Cortex.适应对桶状皮层模型中触须偏转速度和角方向辨别能力的影响
Front Comput Neurosci. 2018 Jun 12;12:45. doi: 10.3389/fncom.2018.00045. eCollection 2018.