Department of Neurobiology, Physiology and Behavior, University of California, Davis, California 95616.
Department of Molecular Pharmacology and Physiology, University of South Florida, Tampa, Florida 33620.
eNeuro. 2020 Mar 31;7(2). doi: 10.1523/ENEURO.0504-19.2020. Print 2020 Mar/Apr.
Spike conduction velocity characteristically differs between myelinated and unmyelinated axons. Here we test whether spikes of myelinated and unmyelinated paths differ in other respects by measuring rat retinal ganglion cell (RGC) spike duration in the intraretinal, unmyelinated nerve fiber layer and the extraretinal, myelinated optic nerve and optic chiasm. We find that rapid spike firing and illumination broaden spikes in intraretinal axons but not in extraretinal axons. RGC axons thus initiate spikes intraretinally and normalize spike duration extraretinally. Additionally, we analyze spikes that were recorded in a previous study of rhesus macaque retinogeniculate transmission and find that rapid spike firing does not broaden spikes in optic tract. The spike normalization we find reduces the number of spike properties that can change during RGC light responses. However, this is not because identical spikes fire in all axons. Instead, our recordings show that different subtypes of RGC generate axonal spikes of different durations and that the differences resemble spike duration increases that alter neurotransmitter release from other neurons. Moreover, previous studies have shown that RGC spikes of shorter duration can fire at higher maximum frequencies. These properties should facilitate signal transfer by different mechanisms at RGC synapses onto subcortical target neurons.
有髓和无髓轴突的刺脉冲传导速度特征不同。在这里,我们通过测量大鼠视网膜神经节细胞(RGC)在视网膜内无髓神经纤维层和视网膜外有髓视神经和视交叉中的刺脉冲持续时间,来测试有髓和无髓路径的刺脉冲在其他方面是否存在差异。我们发现,快速刺发放电和光照会使视网膜内轴突的刺脉冲变宽,但不会使视网膜外轴突的刺脉冲变宽。因此,RGC 轴突在视网膜内起始刺脉冲,并在视网膜外使刺脉冲持续时间正常化。此外,我们分析了先前恒河猴视网膜-视放射传递研究中记录的刺脉冲,发现快速刺发放电不会使视束中的刺脉冲变宽。我们发现的刺脉冲正常化减少了 RGC 光反应过程中可能改变的刺脉冲特性数量。然而,这并不是因为所有轴突中都发射相同的刺脉冲。相反,我们的记录显示,不同类型的 RGC 产生不同持续时间的轴突刺脉冲,这些差异类似于改变其他神经元神经递质释放的刺脉冲持续时间增加。此外,先前的研究表明,持续时间较短的 RGC 刺脉冲可以以更高的最大频率发射。这些特性应该通过不同的机制在 RGC 突触到皮质下靶神经元的信号传递中提供便利。