Zurita Hector, Feyen Paul L C, Apicella Alfonso Junior
Department of Biology, Neurosciences Institute, University of Texas, San Antonio, San Antonio, TX, United States.
Front Cell Neurosci. 2018 Mar 6;12:53. doi: 10.3389/fncel.2018.00053. eCollection 2018.
Previous studies have shown that parvalbumin-expressing neurons (CC-Parv neurons) connect the two hemispheres of motor and sensory areas via the corpus callosum, and are a functional part of the cortical circuit. Here we test the hypothesis that layer 5 CC-Parv neurons possess anatomical and molecular mechanisms which dampen excitability and modulate the gating of interhemispheric inhibition. In order to investigate this hypothesis we use viral tracing to determine the anatomical and electrophysiological properties of layer 5 CC-Parv and parvalbumin-expressing (Parv) neurons of the mouse auditory cortex (AC). Here we show that layer 5 CC-Parv neurons had larger dendritic fields characterized by longer dendrites that branched farther from the soma, whereas layer 5 Parv neurons had smaller dendritic fields characterized by shorter dendrites that branched nearer to the soma. The layer 5 CC-Parv neurons are characterized by delayed action potential (AP) responses to threshold currents, lower firing rates, and lower instantaneous frequencies compared to the layer 5 Parv neurons. Kv1.1 containing K channels are the main source of the AP repolarization of the layer 5 CC-Parv and have a major role in determining both the spike delayed response, firing rate and instantaneous frequency of these neurons.
先前的研究表明,表达小白蛋白的神经元(胼胝体-小白蛋白神经元)通过胼胝体连接运动和感觉区域的两个半球,并且是皮质回路的功能组成部分。在这里,我们测试了这样一个假设,即第5层胼胝体-小白蛋白神经元具有抑制兴奋性和调节半球间抑制门控的解剖学和分子机制。为了研究这个假设,我们使用病毒示踪来确定小鼠听觉皮层(AC)第5层胼胝体-小白蛋白神经元和表达小白蛋白(小白蛋白)神经元的解剖学和电生理特性。在这里,我们表明,第5层胼胝体-小白蛋白神经元具有更大的树突野,其特征是树突更长,从胞体分支更远,而第5层小白蛋白神经元具有更小的树突野,其特征是树突更短,从胞体分支更近。与第5层小白蛋白神经元相比,第5层胼胝体-小白蛋白神经元的特征在于对阈电流的动作电位(AP)反应延迟、放电率较低和瞬时频率较低。含有Kv1.1的钾通道是第5层胼胝体-小白蛋白神经元AP复极化的主要来源,并且在决定这些神经元的尖峰延迟反应、放电率和瞬时频率方面起主要作用。