Murphy Gabe J, Rieke Fred
Howard Hughes Medical Institute, University of Washington, Seattle, Washington 98195, USA.
Neuron. 2006 Nov 9;52(3):511-24. doi: 10.1016/j.neuron.2006.09.014.
Visual, auditory, somatosensory, and olfactory stimuli generate temporally precise patterns of action potentials (spikes). It is unclear, however, how the precision of spike generation relates to the pattern and variability of synaptic input elicited by physiological stimuli. We determined how synaptic conductances evoked by light stimuli that activate the rod bipolar pathway control spike generation in three identified types of mouse retinal ganglion cells (RGCs). The relative amplitude, timing, and impact of excitatory and inhibitory input differed dramatically between On and Off RGCs. Spikes evoked by repeated somatic injection of identical light-evoked synaptic conductances were more temporally precise than those evoked by light. However, the precision of spikes evoked by conductances that varied from trial to trial was similar to that of light-evoked spikes. Thus, the rod bipolar pathway modulates different RGCs via unique combinations of synaptic input, and RGC temporal variability reflects variability in the input this circuit provides.
视觉、听觉、体感和嗅觉刺激会产生时间上精确的动作电位(尖峰)模式。然而,尚不清楚尖峰产生的精确性与生理刺激引发的突触输入的模式和变异性之间有何关系。我们确定了激活视杆双极通路的光刺激所诱发的突触电导如何控制三种已鉴定类型的小鼠视网膜神经节细胞(RGC)中的尖峰产生。On型和Off型RGC之间,兴奋性和抑制性输入的相对幅度、时间和影响差异显著。通过重复体细胞注射相同的光诱发突触电导所诱发的尖峰在时间上比光诱发的尖峰更精确。然而,每次试验中变化的电导所诱发的尖峰的精确性与光诱发的尖峰相似。因此,视杆双极通路通过独特的突触输入组合来调节不同的RGC,并且RGC的时间变异性反映了该电路提供的输入的变异性。