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本文引用的文献

1
Forelimb EMG-based trigger to control an electronic spinal bridge to enable hindlimb stepping after a complete spinal cord lesion in rats.基于前肢肌电图的触发控制电子脊髓桥,使大鼠完全脊髓损伤后能够进行后肢步态。
J Neuroeng Rehabil. 2012 Jun 12;9:38. doi: 10.1186/1743-0003-9-38.
2
Variability in step training enhances locomotor recovery after a spinal cord injury.步训中的变异性增强了脊髓损伤后的运动功能恢复。
Eur J Neurosci. 2012 Jul;36(1):2054-62. doi: 10.1111/j.1460-9568.2012.08106.x. Epub 2012 May 16.
3
Accommodation of the spinal cat to a tripping perturbation.脊髓猫对绊倒性扰动的适应。
Front Physiol. 2012 May 1;3:112. doi: 10.3389/fphys.2012.00112. eCollection 2012.
4
Somatosensory control of balance during locomotion in decerebrated cat.去大脑僵直猫在运动中本体感觉对平衡的控制。
J Neurophysiol. 2012 Apr;107(8):2072-82. doi: 10.1152/jn.00730.2011. Epub 2012 Jan 11.
5
Controlling specific locomotor behaviors through multidimensional monoaminergic modulation of spinal circuitries.通过对脊髓回路的多维单胺能调制来控制特定的运动行为。
J Neurosci. 2011 Jun 22;31(25):9264-78. doi: 10.1523/JNEUROSCI.5796-10.2011.
6
Effect of epidural stimulation of the lumbosacral spinal cord on voluntary movement, standing, and assisted stepping after motor complete paraplegia: a case study.腰背部脊髓硬膜外刺激对运动完全性截瘫后自主运动、站立和辅助行走的影响:病例研究。
Lancet. 2011 Jun 4;377(9781):1938-47. doi: 10.1016/S0140-6736(11)60547-3. Epub 2011 May 19.
7
Phase-dependent modulation of percutaneously elicited multisegmental muscle responses after spinal cord injury.脊髓损伤后经皮诱发的多节段肌肉反应的时相依赖性调制。
J Neurophysiol. 2010 May;103(5):2808-20. doi: 10.1152/jn.00316.2009.
8
Transformation of nonfunctional spinal circuits into functional states after the loss of brain input.大脑输入丧失后非功能性脊髓回路向功能性状态的转变。
Nat Neurosci. 2009 Oct;12(10):1333-42. doi: 10.1038/nn.2401. Epub 2009 Sep 20.
9
Step training reinforces specific spinal locomotor circuitry in adult spinal rats.阶梯训练强化成年脊髓损伤大鼠特定的脊髓运动神经回路。
J Neurosci. 2008 Jul 16;28(29):7370-5. doi: 10.1523/JNEUROSCI.1881-08.2008.
10
Epidural stimulation induced modulation of spinal locomotor networks in adult spinal rats.硬膜外刺激对成年脊髓损伤大鼠脊髓运动网络的调节作用。
J Neurosci. 2008 Jun 4;28(23):6022-9. doi: 10.1523/JNEUROSCI.0080-08.2008.

脊髓大鼠迈步时运动诱发电位的神经调节。

Neuromodulation of motor-evoked potentials during stepping in spinal rats.

机构信息

Biomedical Engineering IDP, University of California, Los Angeles, California;

出版信息

J Neurophysiol. 2013 Sep;110(6):1311-22. doi: 10.1152/jn.00169.2013. Epub 2013 Jun 12.

DOI:10.1152/jn.00169.2013
PMID:23761695
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3763156/
Abstract

The rat spinal cord isolated from supraspinal control via a complete low- to midthoracic spinal cord transection produces locomotor-like patterns in the hindlimbs when facilitated pharmacologically and/or by epidural electrical stimulation. To evaluate the role of epidural electrical stimulation in enabling motor control (eEmc) for locomotion and posture, we recorded potentials evoked by epidural spinal cord stimulation in selected hindlimb muscles during stepping and standing in adult spinal rats. We hypothesized that the temporal details of the phase-dependent modulation of these evoked potentials in selected hindlimb muscles while performing a motor task in the unanesthetized state would be predictive of the potential of the spinal circuitries to generate stepping. To test this hypothesis, we characterized soleus and tibialis anterior (TA) muscle responses as middle response (MR; 4-6 ms) or late responses (LRs; >7 ms) during stepping with eEmc. We then compared these responses to the stepping parameters with and without a serotoninergic agonist (quipazine) or a glycinergic blocker (strychnine). Quipazine inhibited the MRs induced by eEmc during nonweight-bearing standing but facilitated locomotion and increased the amplitude and number of LRs induced by eEmc during stepping. Strychnine facilitated stepping and reorganized the LRs pattern in the soleus. The LRs in the TA remained relatively stable at varying loads and speeds during locomotion, whereas the LRs in the soleus were strongly modulated by both of these variables. These data suggest that LRs facilitated electrically and/or pharmacologically are not time-locked to the stimulation pulse but are highly correlated to the stepping patterns of spinal rats.

摘要

通过完全的中胸至低胸脊髓横切术,从上位中枢控制中分离出大鼠脊髓后,在药理学辅助和/或硬膜外电刺激下,后肢会产生类似行走的模式。为了评估硬膜外电刺激在运动控制(eEmc)中的作用,我们记录了成年脊髓大鼠在行走和站立时,硬膜外脊髓刺激诱发的选定后肢肌肉的电位。我们假设,在未麻醉状态下执行运动任务时,这些诱发电位在选定后肢肌肉中的相位相关调制的时间细节,将预测脊髓回路产生行走的潜力。为了验证这一假设,我们在 eEmc 下行走时,将比目鱼肌和胫骨前肌(TA)的肌肉反应特征化为中反应(MR;4-6ms)或迟反应(LRs;>7ms)。然后,我们将这些反应与有无 5-羟色胺能激动剂(麦角酸二乙酰胺)或甘氨酸能阻滞剂(士的宁)的行走参数进行了比较。麦角酸二乙酰胺抑制了 eEmc 在非负重站立期间诱导的 MRs,但促进了行走,并增加了 eEmc 在行走期间诱导的 LRs 的幅度和数量。士的宁促进了行走,并重新组织了比目鱼肌的 LRs 模式。TA 中的 LRs 在行走过程中在不同的负荷和速度下相对稳定,而比目鱼肌中的 LRs 则受到这两个变量的强烈调节。这些数据表明,电刺激和/或药理学促进的 LRs 与刺激脉冲不同步,但与脊髓大鼠的行走模式高度相关。