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Left-right coordination from simple to extreme conditions during split-belt locomotion in the chronic spinal adult cat.成年慢性脊髓损伤猫在分带运动过程中从简单到极端条件下的左右协调
J Physiol. 2017 Jan 1;595(1):341-361. doi: 10.1113/JP272740. Epub 2016 Aug 13.
2
Adaptive muscle plasticity of a remaining agonist following denervation of its close synergists in a model of complete spinal cord injury.在完全性脊髓损伤模型中,其紧密协同肌去神经支配后,剩余主动肌的适应性肌肉可塑性。
J Neurophysiol. 2016 Sep 1;116(3):1366-74. doi: 10.1152/jn.00328.2016. Epub 2016 Jun 29.
3
The spinal control of locomotion and step-to-step variability in left-right symmetry from slow to moderate speeds.从慢速到中速运动时脊髓对运动的控制以及左右对称性的逐步变化。
J Neurophysiol. 2015 Aug;114(2):1119-28. doi: 10.1152/jn.00419.2015. Epub 2015 Jun 17.
4
Phenotypic characterization of speed-associated gait changes in mice reveals modular organization of locomotor networks.小鼠速度相关步态变化的表型特征揭示了运动网络的模块化组织。
Curr Biol. 2015 Jun 1;25(11):1426-36. doi: 10.1016/j.cub.2015.04.005. Epub 2015 May 7.
5
Modulation of forelimb and hindlimb muscle activity during quadrupedal tied-belt and split-belt locomotion in intact cats.完整猫在四足系腰带和分带运动过程中前肢和后肢肌肉活动的调节
Neuroscience. 2015 Apr 2;290:266-78. doi: 10.1016/j.neuroscience.2014.12.084. Epub 2015 Jan 31.
6
Effect of stimulating the lumbar skin caudal to a complete spinal cord injury on hindlimb locomotion.刺激完全性脊髓损伤下方的腰部皮肤对后肢运动的影响。
J Neurophysiol. 2015 Jan 15;113(2):669-76. doi: 10.1152/jn.00739.2014. Epub 2014 Oct 22.
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Spatiotemporal control of interlimb coordination during transverse split-belt locomotion with 1:1 or 2:1 coupling patterns in intact adult cats.成年健康猫在采用1:1或2:1耦合模式进行横向分带运动时肢体间协调的时空控制
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Modulation of phase durations, phase variations, and temporal coordination of the four limbs during quadrupedal split-belt locomotion in intact adult cats.成年健康猫在四足分带运动过程中四肢的相位持续时间、相位变化和时间协调性的调节
J Neurophysiol. 2014 Oct 15;112(8):1825-37. doi: 10.1152/jn.00160.2014. Epub 2014 Jul 16.
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Speed-dependent modulation of phase variations on a step-by-step basis and its impact on the consistency of interlimb coordination during quadrupedal locomotion in intact adult cats.在完整成年猫的四足运动中,逐步的相位变化的速度依赖性调制及其对肢体间协调性一致性的影响。
J Neurophysiol. 2014 May;111(9):1885-902. doi: 10.1152/jn.00524.2013. Epub 2014 Feb 12.
10
Stride length asymmetry in split-belt locomotion.分腿带运动中的步长不对称。
Gait Posture. 2014;39(1):652-4. doi: 10.1016/j.gaitpost.2013.08.030. Epub 2013 Aug 31.

脊髓猫运动速度增加时皮肤反射的非线性调制

Nonlinear Modulation of Cutaneous Reflexes with Increasing Speed of Locomotion in Spinal Cats.

作者信息

Hurteau Marie-France, Thibaudier Yann, Dambreville Charline, Chraibi Anass, Desrochers Etienne, Telonio Alessandro, Frigon Alain

机构信息

Department of Pharmacology-Physiology, Faculty of Medicine and Health Sciences, Université de Sherbrooke, Sherbrooke, Quebec J1H 5N4, Canada.

Department of Pharmacology-Physiology, Faculty of Medicine and Health Sciences, Université de Sherbrooke, Sherbrooke, Quebec J1H 5N4, Canada

出版信息

J Neurosci. 2017 Apr 5;37(14):3896-3912. doi: 10.1523/JNEUROSCI.3042-16.2017. Epub 2017 Mar 14.

DOI:10.1523/JNEUROSCI.3042-16.2017
PMID:28292829
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6596719/
Abstract

Cutaneous reflexes are important for responding rapidly to perturbations, correcting limb trajectory, and strengthening support. During locomotion, they are modulated by phase to generate functionally appropriate responses. The goal of the present study was to determine whether cutaneous reflexes and their phase-dependent modulation are altered with increasing speed and if this is accomplished at the spinal level. Four adult cats that recovered stable hindlimb locomotion after spinal transection were implanted with electrodes to record hindlimb muscle activity chronically and to stimulate the superficial peroneal nerve electrically to evoke cutaneous reflexes. The speed-dependent modulation of cutaneous reflexes was assessed by evoking and characterizing ipsilateral and contralateral responses in semitendinosus, vastus lateralis, and lateral gastrocnemius muscles at four treadmill speeds: 0.2, 0.4, 0.6, and 0.8 m/s. The amplitudes of ipsilateral and contralateral responses were largest at intermediate speeds of 0.4 and 0.6 m/s, followed by the slowest and fastest speeds of 0.2 and 0.8 m/s, respectively. The phase-dependent modulation of reflexes was maintained across speeds, with ipsilateral and contralateral responses peaking during the stance-to-swing transition and swing phase of the ipsilateral limb or midstance of the contralateral limb. Reflex modulation across speeds also correlated with the spatial symmetry of the locomotor pattern, but not with temporal symmetry. That the cutaneous reflex amplitude in all muscles was similarly modulated with increasing speed independently of the background level of muscle activity is consistent with a generalized premotoneuronal spinal control mechanism that could help to stabilize the locomotor pattern when changing speed. When walking, receptors located in the skin respond to mechanical pressure and send signals to the CNS to correct the trajectory of the limb and to reinforce weight support. These signals produce different responses, or reflexes, if they occur when the foot is contacting the ground or in the air. This is known as phase-dependent modulation of reflexes. However, when walking at faster speeds, we do not know if and how these reflexes are changed. In the present study, we show that reflexes from the skin are modulated with speed and that this is controlled at the level of the spinal cord. This modulation could be important in preventing sensory signals from destabilizing the walking pattern.

摘要

皮肤反射对于快速响应扰动、校正肢体轨迹和加强支撑很重要。在运动过程中,它们会根据相位进行调节,以产生功能上适当的反应。本研究的目的是确定皮肤反射及其相位依赖性调节是否会随着速度增加而改变,以及这是否在脊髓水平上实现。四只成年猫在脊髓横断后恢复了稳定的后肢运动,它们被植入电极以长期记录后肢肌肉活动,并通过电刺激腓浅神经来诱发皮肤反射。通过在四种跑步机速度(0.2、0.4、0.6和0.8米/秒)下诱发并表征半腱肌、股外侧肌和腓肠外侧肌的同侧和对侧反应,评估皮肤反射的速度依赖性调节。同侧和对侧反应的幅度在0.4和0.6米/秒的中间速度时最大,分别其次是最慢和最快的速度0.2和0.8米/秒。反射的相位依赖性调节在不同速度下均保持,同侧和对侧反应在同侧肢体的支撑相到摆动相过渡以及摆动相或对侧肢体的站立中期达到峰值。不同速度下的反射调节也与运动模式的空间对称性相关,但与时间对称性无关。所有肌肉中的皮肤反射幅度随着速度增加而以类似方式调节,与肌肉活动的背景水平无关,这与一种广义的运动神经元前脊髓控制机制一致,该机制在改变速度时有助于稳定运动模式。行走时,位于皮肤中的感受器对机械压力做出反应,并向中枢神经系统发送信号以校正肢体轨迹并加强重量支撑。如果这些信号在脚接触地面或在空中时出现,会产生不同的反应或反射。这被称为反射的相位依赖性调节。然而,当以更快速度行走时,我们不知道这些反射是否以及如何改变。在本研究中,我们表明来自皮肤的反射会随着速度进行调节,并且这是在脊髓水平上控制的。这种调节对于防止感觉信号破坏行走模式可能很重要。