Jiang Lei, Ni Hong, Wang Qi-Yi, Huang Li, Zhao Shi-di, Yu Jian-Dong, Ge Rong-Jing
Department of Pathophysiology, Bengbu Medical College, Bengbu, Anhui Province, China.
Department of General Surgery, The Second Affiliated Hospital of Bengbu Medical College, Bengbu, Anhui Province, China.
Neural Regen Res. 2017 Jul;12(7):1079-1085. doi: 10.4103/1673-5374.211186.
Limited by the tiny structure of axons, the effects of these axonal hyperpolarizing inputs on neuronal activity have not been directly elucidated. Here, we imitated these processes by simultaneously recording the activities of the somas and proximal axons of cortical pyramidal neurons. We found that spikes and subthreshold potentials propagate between somas and axons with high fidelity. Furthermore, inhibitory inputs on axons have opposite effects on neuronal activity according to their temporal integration with upstream signals. Concurrent with somatic depolarization, inhibitory inputs on axons decrease neuronal excitability and impede spike generation. In addition, following action potentials, inhibitory inputs on an axon increase neuronal spike capacity and improve spike precision. These results indicate that inhibitory inputs on proximal axons have dual regulatory functions in neuronal activity (suppression or facilitation) according to neuronal network patterns.
由于轴突结构微小,这些轴突超极化输入对神经元活动的影响尚未得到直接阐明。在此,我们通过同时记录皮层锥体神经元的胞体和近端轴突的活动来模拟这些过程。我们发现,峰电位和阈下电位在胞体和轴突之间以高保真度传播。此外,轴突上的抑制性输入根据其与上游信号的时间整合对神经元活动产生相反的影响。与胞体去极化同时发生时,轴突上的抑制性输入会降低神经元兴奋性并阻碍峰电位的产生。此外,在动作电位之后,轴突上的抑制性输入会增加神经元的峰电位能力并提高峰电位精度。这些结果表明,近端轴突上的抑制性输入根据神经网络模式在神经元活动中具有双重调节功能(抑制或促进)。