首页> 外文期刊>The Journal of Neuroscience: The Official Journal of the Society for Neuroscience >Glycinergic inhibition contributes to the generation of rostral scratch motor patterns in the turtle spinal cord.
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Glycinergic inhibition contributes to the generation of rostral scratch motor patterns in the turtle spinal cord.

机译:甘草酸抑制作用有助于在乌龟脊髓中产生划伤性运动模式。

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摘要

Cutaneous stimulation within the rostral scratch receptive field in a low spinal-immobilized turtle elicits a fictive rostral scratch reflex characterized by robust rhythmic motor output from ipsilateral hindlimb muscle nerves and weaker, alternating motor discharge in contralateral nerves. Simultaneous bilateral stimulation elicits bilateral rostral scratch motor patterns in which activity on the right and left sides alternates. We investigated the role of glycinergic inhibition in the generation and coordination of fictive rostral scratch motor patterns. Glycine (2 or 5 mM) and strychnine (5-50 microM), a glycine antagonist, were superfused over the anterior spinal hindlimb enlargement while fictive rostral scratch motor output was recorded bilaterally from hindlimb muscle nerves in the form of electroneurograms (ENGs). Although glycine reduced rostral scratch burst frequencies, strychnine tended to increase burst frequency. Strychnine also changed the shape of hip flexor ENG bursts, resulting in more abrupt burst onsets, indicating an earlier recruitment of motor neurons with large ENG spikes. During bilateral stimulation, strychnine increased the variability of interlimb phase values (left vs right hip flexor bursts) but did not abolish right-left alternation. These results indicate that glycinergic neurons in or near the anterior hindlimb enlargement contribute to the overall timing of the rostral scratch rhythm and to the recruitment timing of individual hip flexor motor neurons within each scratch burst. Our data also indicate that glycinergic mechanisms contribute to, but are not critically important for, maintaining an alternating interlimb coordination during bilateral scratch motor patterns.
机译:低位固定脊柱的海龟在划痕接受区域内的皮肤刺激引起虚构的划痕反射,其特征是来自同侧后肢肌肉神经的节律性运动输出强劲,而对侧神经的运动性交替运动减弱。同时的双侧刺激会引起双侧延髓划痕运动模式,左右两侧的活动交替进行。我们调查了甘氨酸抑制作用在虚构的玫瑰色划痕运动模式的产生和协调中的作用。甘氨酸(2或5 mM)和苯丙氨酸(5-50 microM)(一种甘氨酸拮抗剂)在前脊髓后肢增大上融合,同时从后肢肌肉神经以电子神经电图(ENGs)的形式记录了双侧虚构的鼻侧划痕运动输出。尽管甘氨酸降低了延缓的划痕破裂频率,但士的宁趋于增加破裂频率。 Strychnine还改变了髋屈肌ENG爆发的形状,导致更突然的爆发发作,表明早期有较大ENG峰值的运动神经元募集。在双侧刺激过程中,士的宁增加了肢间期相值的变化(左髋屈肌与右髋屈肌爆发),但并未消除左右交替。这些结果表明,前肢后肢肿大或其附近的甘氨酸能神经元有助于延缓划伤节律的整体时机,并有助于每次划伤爆发时单个髋屈肌运动神经元的募集时机。我们的数据还表明,在双侧刮擦运动模式期间,甘氨酸能机制有助于维持交替的肢体协调,但并不是至关重要。

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