首页> 美国卫生研究院文献>The Journal of Neuroscience >H-Reflex Up-Conditioning Encourages Recovery of EMG Activity and H-Reflexes after Sciatic Nerve Transection and Repair in Rats
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H-Reflex Up-Conditioning Encourages Recovery of EMG Activity and H-Reflexes after Sciatic Nerve Transection and Repair in Rats

机译:H反射上调鼓励大鼠坐骨神经横断和修复后EMG活性和H反射的恢复。

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摘要

Operant conditioning of the spinal stretch reflex or its electrical analog, the H-reflex, produces spinal cord plasticity and can thereby affect motoneuron responses to primary afferent input. To explore whether this conditioning can affect the functional outcome after peripheral nerve injury, we assessed the effect of up-conditioning soleus (SOL) H-reflex on SOL and tibialis anterior (TA) function after sciatic nerve transection and repair. Sprague Dawley rats were implanted with EMG electrodes in SOL and TA and stimulating cuffs on the posterior tibial nerve. After control data collection, the sciatic nerve was transected and repaired and the rat was exposed for 120 d to continued control data collection (TC rats) or SOL H-reflex up-conditioning (TU rats). At the end of data collection, motoneurons that had reinnervated SOL and TA were labeled retrogradely. Putative primary afferent terminals [i.e., terminals containing vesicular glutamate transporter-1 (VGLUT1)] on SOL motoneurons were studied immunohistochemically. SOL (and probably TA) background EMG activity recovered faster in TU rats than in TC rats, and the final recovered SOL H-reflex was significantly larger in TU than in TC rats. TU and TC rats had significantly fewer labeled motoneurons and higher proportions of double-labeled motoneurons than untransected rats. VGLUT1 terminals were significantly more numerous on SOL motoneurons of TU than TC rats. Combined with the larger H-reflexes in TU rats, this anatomical finding supports the hypothesis that SOL H-reflex up-conditioning strengthened primary afferent reinnervation of SOL motoneurons. These results suggest that H-reflex up-conditioning may improve functional recovery after nerve injury and repair.
机译:脊髓伸展反射或其电类似物H反射的操作性调节产生脊髓可塑性,从而影响运动神经元对初级传入输入的反应。为了探讨这种调节是否会影响周围神经损伤后的功能预后,我们评估了坐骨神经横断和修复后,比目鱼(SOL)H反射增强对SOL和胫骨前(TA)功能的影响。 Sprague Dawley大鼠在SOL和TA中植入了EMG电极,并刺激了胫骨后神经的袖套。收集对照数据后,将坐骨神经横断并修复,将大鼠暴露于连续对照数据收集(TC大鼠)或SOL H反射增强条件(TU大鼠)120天。在数据收集结束时,已使SOL和TA重新神经化的运动神经元被逆行标记。免疫组织化学研究了SOL运动神经元上的假定的初级传入终末[即含有囊状谷氨酸转运蛋白-1(VGLUT1)的终末]。 TU大鼠的SOL(可能还有TA)背景EMG活性恢复速度比TC大鼠快,而TU最终恢复的SOL H反射显着大于TC大鼠。与未横断的大鼠相比,TU和TC大鼠的标记运动神经元明显更少,而双标记运动神经元的比例更高。 TU的SOL运动神经元上的VGLUT1末端明显多于TC大鼠。结合TU大鼠更大的H反射,这一解剖学发现支持SOL H反射上调增强SOL运动神经元的初次传入神经支配的假说。这些结果表明,H反射上调可以改善神经损伤和修复后的功能恢复。

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