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首页> 外文期刊>The Journal of Experimental Biology >Characterization of a descending pathway: activation and effects on motor patterns in the brachyuran crustacean stomatogastric nervous system.
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Characterization of a descending pathway: activation and effects on motor patterns in the brachyuran crustacean stomatogastric nervous system.

机译:下降途径的表征:短臂类甲壳动物气胃神经系统的激活及其对运动模式的影响。

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The regulation of motor patterns by higher-order neuronal centers ensures appropriate motor function and behavior, but only a few studies have characterized this regulation at the cellular level. Here, we address motor pattern regulation in the stomatogastric nervous system (STNS) of the crab Cancer pagurus. This easily accessible model system is an extension of the central nervous system and contains the motor circuits that generate the rhythmic motor patterns for ingestion (esophageal rhythm) and processing of food (gastric mill and pyloric rhythms). We have documented the actions of two identified neurons located in the brain on the STNS motor circuits. We show that these neurons provide exteroceptive chemosensory information to the motor circuits and we outline their axonal projection patterns, their firing activity and their effects on three motor patterns. Backfill stainings and activity measurements in vivo and in vitro show that two neurons located in cluster 17 of the brain project via the inferior ventricular (IV) nerve to the STNS. These IV neurons started to burst rhythmically when chemosensory stimuli were applied to the first antennae. When rhythmically activated in vitro, gastric mill rhythms were elicited or, if already active, entrained by the IV neuron activity. In addition, IV neuron stimulation excited the esophageal motor neuron and inhibited several pyloric neurons such that the timing of the IV neuron activity was imposed on all motor rhythms. The IV neurons were thus capable of synchronizing the activities of different motor circuits, which demonstrates the regulation of motor patterns by higher-order neuronal centers.
机译:高阶神经元中枢对运动模式的调节可确保适当的运动功能和行为,但只有少数研究在细胞水平表征了这种调节。在这里,我们探讨蟹癌巨蟹的气孔神经系统(STNS)中的运动模式调节。这种易于访问的模型系统是中枢神经系统的扩展,包含运动电路,该运动电路产生有节奏的运动模式,以供摄取(食道节律)和食品加工(胃磨和幽门节律)。我们已经记录了位于STNS电机回路中大脑中的两个已识别神经元的动作。我们表明,这些神经元为运动回路提供了感受性化学感应信息,并概述了它们的轴突投影模式,放电活动及其对三种运动模式的影响。体内和体外回填染色和活性测量表明,位于大脑簇17中的两个神经元通过下室(IV)神经投射到STNS。当将化学感应刺激应用于第一个触角时,这些IV神经元开始有节奏地爆发。当在体外有节奏地激活时,IV神经元活性会引起胃碾碎节律,或者如果已经激活了胃律。另外,IV神经元刺激刺激食道运动神经元并抑制几个幽门神经元,使得IV神经元活性的时机强加于所有运动节律。因此,IV神经元能够同步不同运动回路的活动,这证明了高阶神经元中心对运动模式的调节。

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