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Differential Dynamic Processing of Afferent Signals in Frog Tonic and Phasic Second-Order Vestibular Neurons

机译:青蛙补品和相位性二阶前庭神经元传入信号的差分动态处理

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摘要

The sensory–motor transformation of the large dynamic spectrum of head-motion-related signals occurs in separate vestibulo-ocular pathways. Synaptic responses of tonic and phasic second-order vestibular neurons were recorded in isolated frog brains after stimulation of individual labyrinthine nerve branches with trains of single electrical pulses. The timing of the single pulses was adapted from spike discharge patterns of frog semicircular canal nerve afferents during sinusoidal head rotation. Because each electrical pulse evoked a single spike in afferent fibers, the resulting sequences with sinusoidally modulated intervals and peak frequencies up to 100 Hz allowed studying the processing of presynaptic afferent inputs with in vivo characteristics in second-order vestibular neurons recorded in vitro in an isolated whole brain. Variation of pulse-train parameters showed that the postsynaptic compound response dynamics differ in the two types of frog vestibular neurons. In tonic neurons, subthreshold compound responses and evoked discharge patterns exhibited relatively linear dynamics and were generally aligned with pulse frequency modulation. In contrast, compound responses of phasic neurons were asymmetric with large leads of subthreshold response peaks and evoked spike discharge relative to stimulus waveform. These nonlinearities were caused by the particular intrinsic properties of phasic vestibular neurons and were facilitated by GABAergic and glycinergic inhibitory inputs from tonic type vestibular interneurons and by cerebellar circuits. Coadapted intrinsic filter and emerging network properties thus form dynamically different neuronal elements that provide the appropriate cellular basis for a parallel processing of linear, tonic, and nonlinear phasic vestibulo-ocular response components in central vestibular neurons.
机译:头部运动相关信号的大动态频谱的感觉-运动转换发生在单独的前庭-眼部路径中。在用单个电脉冲序列刺激单个迷宫神经分支后,在孤立的青蛙大脑中记录了强直和有序的二级前庭神经元的突触反应。单个脉冲的时间是根据正弦波头部旋转过程中青蛙半规管神经传入神经的峰值放电模式进行调整的。由于每个电脉冲都会引起传入纤维的单个尖峰,因此产生的具有正弦调制间隔和最高100 Hz峰值频率的序列允许研究在体外分离记录的二阶前庭神经元中具有体内特征的突触前传入输入的处理。全脑。脉冲序列参数的变化表明,在两种类型的青蛙前庭神经元中,突触后复合反应动力学有所不同。在强直神经元中,阈下复合响应和诱发放电模式表现出相对线性的动力学,并且通常与脉冲频率调制对齐。相反,相对于刺激波形,相位神经元的复合反应是不对称的,具有亚阈值反应峰的较大引线和诱发的尖峰放电。这些非线性是由相前庭神经元的特殊内在特性引起的,并由滋补型前庭神经元和小脑回路的GABA能和甘氨酸抑制性输入所促进。相互适应的固有滤波器和新兴的网络特性因此形成了动态不同的神经元元素,这些元素为并行处理中枢前庭神经元中的线性,强直和非线性相前庭眼响应组件提供了适当的细胞基础。

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