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Central Pattern Generators: State-dependent sensorimotor gating in a rhythmic motor system

机译:中央模式发生器:有节奏的电机系统中取决于状态的感觉电机门控

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Sensory feedback influences motor circuits and/or their projection neuron inputs to adjust ongoing motor activity, but its efficacy varies. Currently, less is known about regulation of sensory feedback onto projection neurons that control downstream motor circuits than about sensory regulation of the motor circuit neurons themselves. In this study, we tested whether sensory feedback onto projection neurons is sensitive only to activation of a motor system, or also to the modulatory state underlying that activation, using the crab Cancer borealis stomatogastric nervous system. We examined how proprioceptor neurons (gastropyloric receptors, GPRs) influence the gastric mill (chewing) circuit neurons and the projection neurons (MCN1, CPN2) that drive the gastric mill rhythm. During gastric mill rhythms triggered by the mechanosensory ventral cardiac neurons (VCNs), GPR was shown previously to influence gastric mill circuit neurons, but its excitation of MCN1/CPN2 was absent. In this study, we tested whether GPR effects on MCN1/CPN2 are also absent during gastric mill rhythms triggered by the peptidergic postoesophageal commissure (POC) neurons. The VCN and POC pathways both trigger lasting MCN1/CPN2 activation, but their distinct influence on circuit feedback to these neurons produces different gastric mill motor patterns. We show that GPR excites MCN1 and CPN2 during the POC-gastric mill rhythm, altering their firing rates and activity patterns. This action changes both phases of the POC-gastric mill rhythm, whereas GPR only alters one phase of the VCN-gastric mill rhythm. Thus sensory feedback to projection neurons can be gated as a function of the modulatory state of an active motor system, not simply switched on/off with the onset of motor activity.>NEW & NOTEWORTHY Sensory feedback influences motor systems (i.e., motor circuits and their projection neuron inputs). However, whether regulation of sensory feedback to these projection neurons is consistent across different versions of the same motor pattern driven by the same motor system was not known. We found that gating of sensory feedback to projection neurons is determined by the modulatory state of the motor system, and not simply by whether the system is active or inactive.
机译:感觉反馈影响运动电路和/或它们的投射神经元输入以调节正在进行的运动活动,但是其功效是变化的。当前,对控制下游运动回路的投射神经元上的感觉反馈的调节的了解少于运动回路神经元自身的感觉调节的了解。在这项研究中,我们使用蟹癌的北极胃气道胃神经系统测试了投射神经元上的感觉反馈是否仅对运动系统的激活敏感,或对激活该激活的调节状态敏感。我们检查了本体感受器神经元(胃食管受体,GPR)如何影响胃磨(咀嚼)回路神经元和驱动胃磨节奏的投射神经元(MCN1,CPN2)。在机械感觉腹侧心脏神经元(VCNs)触发的胃磨节律中,以前显示GPR影响胃磨circuit回神经元,但没有MCN1 / CPN2的激发。在这项研究中,我们测试了由肽能性食管后连合(POC)神经元触发的胃磨节律中是否也没有对MCN1 / CPN2产生GPR的影响。 VCN和POC通路均触发持久的MCN1 / CPN2激活,但是它们对这些神经元的回路反馈的独特影响会产生不同的胃磨运动模式。我们表明,GPR在POC胃磨节律期间会激发MCN1和CPN2,从而改变其放电速率和活动模式。此操作会更改POC胃磨碎机节奏的两个阶段,而GPR仅会更改VCN胃磨碎机节奏的一个阶段。因此,可以根据活动的电机系统的调制状态来控制对投射神经元的感觉反馈,而不仅仅是随着电机活动的开始而简单地打开/关闭。> NEW&NOTEWORTHY 感觉反馈会影响电机系统(即电机电路及其投射神经元输入)。然而,尚不清楚在由相同运动系统驱动的相同运动模式的不同版本之间,对这些投射神经元的感觉反馈的调节是否一致。我们发现,对投射神经元的感觉反馈的门控是由运动系统的调节状态决定的,而不是简单地由系统是否处于活动状态决定的。

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