scholarly journals Neuromodulation of motor-evoked potentials during stepping in spinal rats

2013 ◽  
Vol 110 (6) ◽  
pp. 1311-1322 ◽  
Author(s):  
Parag Gad ◽  
Igor Lavrov ◽  
Prithvi Shah ◽  
Hui Zhong ◽  
Roland R. Roy ◽  
...  

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.

Neurosurgery ◽  
1997 ◽  
Vol 41 (6) ◽  
pp. 1327-1336 ◽  
Author(s):  
Nobu Morota ◽  
Vedran Deletis ◽  
Shlomi Constantini ◽  
Markus Kofler ◽  
Henry Cohen ◽  
...  

2019 ◽  
Vol 5 (1) ◽  
Author(s):  
Yucheng Lu ◽  
Baotao Lv ◽  
Qimin Song

Abstract Background Spinal cord ischaemia animal models were established by selective ligation of the lumbar artery in a craniocaudal direction between the renal artery and the aortic bifurcation. Transcranial electrical stimulation motor-evoked potentials were measured to enable their use in future studies on spinal cord ischaemia protection. Methods Thirty-three New Zealand rabbits were randomly divided into 6 groups. Transcranial electrical stimulation motor-evoked potentials were recorded before vascular ligation, 30 min after vascular ligation, and 2 days after vascular ligation. Motor functions were assessed after surgery and 2 days after vascular ligation. The specimens were taken 2 days after ligation for histopathologic observation. Results With increased numbers of ligations, a transient extension of the latency became clear, but there were no significant differences in the statistical analysis. Analysis of variance after ligation at the same time in each group and t tests before and after ligation (P > 0.05) were not significant. One or 2 ligations did not cause spinal cord ischaemic damage. There were no significant differences before and after ligation for the amplitude (P > 0.05). With increased numbers of ligations, the amplitude before and after ligation was gradually reduced in the 3–5 ligation groups (P < 0.05). Conclusions Ligation of segmental spinal cord vessels on 1 or 2 levels did not cause ischaemic damage. Spinal cord ischaemia was observed after 3, 4, or 5 ligations. The amplitude was more sensitive to spinal cord ischaemia than latency. Spinal cord function can be predicted by early changes in the amplitude.


2010 ◽  
Vol 193 (2) ◽  
pp. 210-216 ◽  
Author(s):  
Shrivats Iyer ◽  
Anil Maybhate ◽  
Alessandro Presacco ◽  
Angelo H. All

2016 ◽  
Vol 151 (2) ◽  
pp. 509-517 ◽  
Author(s):  
Kazumasa Tsuda ◽  
Norihiko Shiiya ◽  
Daisuke Takahashi ◽  
Kazuhiro Ohkura ◽  
Katsushi Yamashita ◽  
...  

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