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Single-session cortical electrical stimulation enhances the efficacy of rehabilitative motor training after spinal cord injury in rats

机译:单一会话皮质电气刺激增强了大鼠脊髓损伤后康复电动机训练的功效

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摘要

Low neuronal cAMP levels in adults and a further decline following traumatic central nervous system (CNS) injury has been associated with the limited ability of neurons to regenerate. An approach to increase neuronal cAMP levels post injury is electrical stimulation. Stimulation as a tool to promote neuronal growth has largely been studied in the peripheral nervous system or in spared fibers of the CNS and this research suggests that a single session of electrical stimulation is sufficient to initiate a long-lasting axonal growth program. Here, we sought to promote plasticity and growth of the injured corticospinal tract with electrical cortical stimulation immediately after its spinal injury. Moreover, given the importance of rehabilitative motor training in the clinical setting and in translating plasticity into functional recovery, we applied training as a standard treatment to all rats (i.e., with or without electrical stimulation). Our findings show that electrical cortical stimulation did improve recovery in forelimb function compared to the recovery in unstimulated animals. This recovery is likely linked to increased corticospinal tract plasticity as evidenced by a significant increase in sprouting of collaterals above the lesion site, but not to increased regenerative growth through the lesion itself.
机译:成人的低神经元阵营水平和创伤性中枢神经系统(CNS)损伤的进一步下降已经与神经元再生的有限能力有关。增加神经元阵营水平后损伤后的方法是电刺激。刺激作为促进神经元生长的工具在基本上已经在CNS的外周神经系统或腐烂的纤维中进行了研究,并且本研究表明,单一的电刺激会足以启动持久的轴突生长计划。在这里,我们试图在其脊柱损伤后立即通过电气皮质刺激促进受伤皮质脊髓刺激的可塑性和生长。此外,鉴于临床环境中康复运动训练的重要性以及将可塑性转化为功能恢复,我们将培训作为所有大鼠的标准治疗(即,有或没有电刺激)。我们的研究结果表明,与未刺激的动物的恢复相比,电气皮质刺激确实改善了前列功能的恢复。这种恢复可能与增加的皮质脊髓塑性增长有关,这可以通过在病变位点上方的侧支发芽的显着增加来证明,但不能通过病变本身提高再生生长。

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