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Primary motor cortical metaplasticity induced by priming over the supplementary motor area

机译:补充运动区引发的初级运动皮层可塑性

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摘要

Motor cortical plasticity induced by repetitive transcranial magnetic stimulation (rTMS) sometimes depends on the prior history of neuronal activity. These effects of preceding stimulation on subsequent rTMS-induced plasticity have been suggested to share a similar mechanism to that of metaplasticity, a homeostatic regulation of synaptic plasticity. To explore metaplasticity in humans, many investigations have used designs in which both priming and conditioning are applied over the primary motor cortex (M1), but the effects of priming stimulation over other motor-related cortical areas have not been well documented. Since the supplementary motor area (SMA) has anatomical and functional cortico-cortical connections with M1, here we studied the homeostatic effects of priming stimulation over the SMA on subsequent rTMS-induced plasticity of M1. For priming and subsequent conditioning, we employed a new rTMS protocol, quadripulse stimulation (QPS), which produces a broad range of motor cortical plasticity depending on the interval of the pulses within a burst. The plastic changes induced by QPS at various intervals were altered by priming stimulation over the SMA, which did not change motor-evoked potential sizes on its own but specifically modulated the excitatory I-wave circuits. The data support the view that the homeostatic changes are mediated via mechanisms of metaplasticity and highlight an important interplay between M1 and SMA regarding homeostatic plasticity in humans.
机译:反复经颅磁刺激(rTMS)诱导的运动皮层可塑性有时取决于神经元活动的既往史。先前刺激对后续rTMS诱导的可塑性的这些影响已被认为与代谢性(突触可塑性的稳态调节)具有相似的机制。为了探索人类的可塑性,许多研究都采用了在初级运动皮层(M1)上同时施加启动和调节的设计,但尚未充分记录启动对其他与运动相关的皮质区域的刺激作用。由于辅助运动区(SMA)具有与M1的解剖和功能性皮质-皮质连接,因此在此我们研究了SMA引发刺激对随后的rTMS诱导的M1可塑性的稳态作用。对于启动和随后的调节,我们采用了一种新的rTMS协议,即四脉冲刺激(QPS),它会根据脉冲内脉冲的间隔产生广泛的运动皮层可塑性。通过在SMA上引发刺激,改变了QPS在不同时间间隔引起的塑性变化,SMA本身并没有改变电机诱发的电位大小,而是专门调节了兴奋性I波电路。数据支持这样的观点,即稳态调节是通过代谢机制调节的,并强调了M1和SMA在人体稳态可塑性方面的重要相互作用。

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