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Passive properties of swimmeret motor neurons.

机译:游泳运动神经元的被动特性。

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Four different functional types of motor neurons innervate each swimmeret: return-stroke excitors (RSEs), power-stroke excitors (PSEs), return-stroke inhibitors (RSIs), and power-stroke inhibitors (PSIs). We studied the structures and passive electrical properties of these neurons, and tested the hypothesis that different types of motor neurons would have different passive properties that influenced generation of the swimmeret motor pattern. Cell bodies of neurons innervating one swimmeret were clustered in two anatomic groups in the same ganglion. The shapes of motor neurons in both groups were similar, despite the differences in locations of their cell bodies and in their functions. Diameters of their axons in the swimmeret nerve ranged from <2 to approximately 35 microm. Resting membrane potentials, input resistances, and membrane time constants were recorded with microelectrodes in the processes of swimmeret motor neurons in isolated abdominal nerve cord preparations. Membrane potentials had a median of -59 mV, with 25th and 75th percentiles of -66.0 and -53 mV. The median input resistance was 6.4 M omega, with 25th and 75th percentiles of 3.4 and 13.7 M omega. Membrane time constants had a median of 9.3 ms, with 25th and 75th percentiles of 5.7 and 15.0 ms. Excitatory and inhibitory motor neurons had similar passive properties. RSE motor neurons were typically more depolarized than the other types, but the passive properties of RSE, PSE, RSI, and PSI neurons were not significantly different. Membrane time constants measured from cell bodies were briefer than those measured from neuropil processes, but membrane potentials and input resistances were not significantly different. The relative sizes of different motor neurons were measured from the sizes of their impulses recorded extracellularly from the swimmeret nerve. Smaller motor neurons had lower membrane potentials and were more likely to be active in the motor pattern than were large motor neurons. Motor neurons of different sizes had similar input resistances and membrane time constants. Motor neurons that were either oscillating or oscillating and firing in phase with the swimmeret motor pattern had lower average membrane potentials and longer time constants than those that were not oscillating. When the state of the swimmeret system changed from quiescence to continuous production of the motor pattern, the resting potentials, input resistances, and membrane time constants of individual swimmeret motor neurons changed only slightly. On average, both input resistance and membrane time constant increased. These similarities are considered in light of the functional task each motor neuron performs, and a hypothesis is developed that links the brief time constants of these neurons and graded synaptic transmission by premotor interneurons to control of the swimmeret muscles and the performance of the swimmeret system.
机译:四种不同功能的运动神经元分别支配着每个游泳者:中风后刺激(RSE),中风后刺激(PSE),中风后抑制器(RSI)和中风后抑制器(PSI)。我们研究了这些神经元的结构和被动电特性,并检验了以下假设:不同类型的运动神经元将具有不同的被动特性,从而影响游泳运动模式的产生。支配一个游泳者的神经元细胞体聚集在同一神经节的两个解剖学组中。两组运动神经元的形状相似,尽管它们的细胞体位置和功能不同。游泳神经中轴突的直径范围从<2到大约35微米。在隔离的腹神经索制剂的游泳运动神经元过程中,用微电极记录了静息膜电位,输入电阻和膜时间常数。膜电位的中位数为-59 mV,第25和75个百分位数为-66.0和-53 mV。输入电阻的中值为6.4 MΩ,其中25和75个百分位数分别为3.4和13.7 MΩ。膜时间常数的中位数为9.3毫秒,第25和第75百分位数为5.7和15.0毫秒。兴奋性和抑制性运动神经元具有相似的被动特性。 RSE运动神经元通常比其他类型的去极化更强,但是RSE,PSE,RSI和PSI神经元的被动特性没有显着差异。从细胞体测得的膜时间常数比从Neuropil过程测得的膜时间常数短,但膜电位和输入阻力没有显着差异。根据游泳神经在细胞外记录的冲动大小来测量不同运动神经元的相对大小。较小的运动神经元比大的运动神经元具有较低的膜电位,并且在运动模式中更有可能活跃。不同大小的运动神经元具有相似的输入电阻和膜时间常数。与游泳者运动模式同相振荡或振荡并激发的运动神经元比未振荡的运动神经元具有更低的平均膜电位和更长的时间常数。当游泳者系统的状态从静止状态变为连续产生运动模式时,单个游泳者运动神经元的静息电位,输入电阻和膜时间常数仅发生微小变化。平均而言,输入电阻和膜时间常数均增加。根据每个运动神经元执行的功能任务来考虑这些相似性,并提出了一个假说,该假说将这些神经元的短暂时间常数与前运动神经元的分级突触传递联系起来,以控制游泳者肌肉和游泳者系统的性能。

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