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首页> 外文期刊>Neuroscience: An International Journal under the Editorial Direction of IBRO >Precise timing in fly motion vision is mediated by fast components of combined graded and spike signals.
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Precise timing in fly motion vision is mediated by fast components of combined graded and spike signals.

机译:飞行运动视觉中的精确定时由组合的渐变和尖峰信号的快速分量来调节。

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Firing of an individual neuron is determined by the activity of its presynaptic input ensemble. In this study we analyzed how presynaptic signals with different dynamics interact to control postsynaptic activity. In the blowfly's visual system we simultaneously recorded in vivo from an identified motion-sensitive neuron and from elements of the presynaptic ensemble. The presynaptic cells themselves are mutually electrically coupled and convey both graded and spike signals to their common postsynaptic target. We elicited spikes in the postsynaptic neuron by voltage-clamping one of the presynaptic neurons to various holding potentials and then analyzed the time course of the holding current. Current transients in the clamped presynaptic cell were found to coincide with postsynaptic spikes. The current transients were highly variable in amplitude and occasionally absent during postsynaptic spiking. These characteristics indicate that the current transients in the voltage-clamped neuron result from spikes in electrically coupled co-members of the presynaptic ensemble. Our results suggest that electrical coupling among presynaptic neurons mediates synchronization of spikes within the cell ensemble. Moreover, our findings demonstrate that the graded response component of the presynaptic cells effectively controls the postsynaptic firing rate on a coarse scale while the precise timing of the postsynaptic spikes is a consequence of spikes superimposed on the graded signals of the presynaptic neurons.
机译:单个神经元的触发取决于其突触前输入集合的活动。在这项研究中,我们分析了具有不同动力学的突触前信号如何相互作用以控制突触后活动。在蝇蝇的视觉系统中,我们同时从已识别的运动敏感神经元和突触前合奏的元素进行了体内记录。突触前细胞本身相互电耦合,并将渐变信号和尖峰信号传递到它们共同的突触后靶标。我们通过将突触前神经元之一电压钳位到各种保持电位来引起突触后神经元的尖峰,然后分析保持电流的时间过程。发现钳位的突触前细胞中的电流瞬变与突触后尖峰一致。电流瞬变的幅度高度可变,在突触后尖峰期间偶尔不存在。这些特征表明,电压钳制的神经元中的电流瞬变是由突触前合奏的电耦合共同成员中的尖峰引起的。我们的结果表明,突触前神经元之间的电耦合介导了细胞集合内尖峰的同步。此外,我们的研究结果表明,突触前细胞的分级反应成分可以有效地粗略控制突触后放电速率,而突触后尖峰的精确计时是突触叠加在突触前神经元的分级信号上的结果。

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