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在重组皮质微回路中延迟且时间不精确的神经传递。

Delayed and Temporally Imprecise Neurotransmission in Reorganizing Cortical Microcircuits.

作者信息

Barnes Samuel J, Cheetham Claire E, Liu Yan, Bennett Sophie H, Albieri Giorgia, Jorstad Anne A, Knott Graham W, Finnerty Gerald T

机构信息

MRC Centre Neurodegeneration Research, King's College London, De Crespigny Park, London SE5 8AF, United Kingdom, and.

Computer Vision Laboratory and.

出版信息

J Neurosci. 2015 Jun 17;35(24):9024-37. doi: 10.1523/JNEUROSCI.4583-14.2015.

Abstract

Synaptic neurotransmission is modified at cortical connections throughout life. Varying the amplitude of the postsynaptic response is one mechanism that generates flexible signaling in neural circuits. The timing of the synaptic response may also play a role. Here, we investigated whether weakening and loss of an entire connection between excitatory cortical neurons was foreshadowed in the timing of the postsynaptic response. We made electrophysiological recordings in rat primary somatosensory cortex that was undergoing experience-dependent loss of complete local excitatory connections. The synaptic latency of pyramid-pyramid connections, which typically comprise multiple synapses, was longer and more variable. Connection strength and latency were not correlated. Instead, prolonged latency was more closely related to progression of connection loss. The action potential waveform and axonal conduction velocity were unaffected, suggesting that the altered timing of neurotransmission was attributable to a synaptic mechanism. Modeling studies indicated that increasing the latency and jitter at a subset of synapses reduced the number of action potentials fired by a postsynaptic neuron. We propose that prolonged synaptic latency and diminished temporal precision of neurotransmission are hallmarks of impending loss of a cortical connection.

摘要

突触神经传递在整个生命过程中会在皮质连接处发生改变。改变突触后反应的幅度是在神经回路中产生灵活信号传导的一种机制。突触反应的时间也可能起作用。在这里,我们研究了兴奋性皮质神经元之间整个连接的减弱和丧失是否在突触后反应的时间上有所预示。我们在经历依赖经验的完全局部兴奋性连接丧失的大鼠初级体感皮层进行了电生理记录。典型地包含多个突触的锥体-锥体连接的突触潜伏期更长且更具变异性。连接强度和潜伏期不相关。相反,延长的潜伏期与连接丧失的进展更密切相关。动作电位波形和轴突传导速度未受影响,这表明神经传递时间的改变归因于一种突触机制。建模研究表明,增加一部分突触的潜伏期和抖动会减少突触后神经元发放的动作电位数量。我们提出,延长的突触潜伏期和神经传递时间精度的降低是即将丧失皮质连接的标志。

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