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Sleep spindles and human cortical nociception: a surface and intracerebral electrophysiological study

机译:睡眠纺锤体和人类皮层伤害感受:表面和脑内电生理研究

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Responsiveness to environmental stimuli declines during sleep, and sleep spindles are often considered to play a major role in inhibiting sensory inputs. In the present study, we tested the effect of spindles on behavioural, autonomic and cortical responses to pain, in two experiments assessing surface and intracerebral responses to thermo-nociceptive laser stimuli during the all-night N2 sleep stage. The percentage of arousals remained unchanged as a result of the presence of spindles. Neither cortical nociceptive responses, nor autonomic cardiovascular reactivity were depressed when elicited within a spindle. These results could be replicated in human intracerebral recordings, where sleep spindle activity in the posterior thalamus failed to depress the thalamocortical nociceptive transmission, as measured by sensory responses within the posterior insula. Hence, the assumed inhibitory effect of spindles on sensory inputs may not apply to the nociceptive system, possibly as a result of the specificity of spinothalamic pathways and the crucial role of nociceptive information for homeostasis. Intriguingly, a late scalp response commonly considered to reflect high-order stimulus processing (the P3' potential) was significantly enhanced during spindling, suggesting a possible spindle-driven facilitation, rather than attenuation, of cortical nociception.
机译:睡眠期间对环境刺激的反应性下降,并且通常认为睡眠纺锤体在抑制感觉输入中起主要作用。在本研究中,我们在两个评估整夜N2睡眠阶段对热伤害感受性激光刺激的表面和大脑反应的实验中,测试了纺锤体对疼痛的行为,自主和皮质反应的影响。由于纺锤体的存在,唤醒的百分比保持不变。在纺锤体内引起皮层伤害性反应或自主性心血管反应均未降低。这些结果可以复制到人类的大脑记录中,根据大脑后岛内的感觉反应,大脑后丘脑中的睡眠纺锤体活动未能抑制丘脑皮质伤害性传递。因此,纺锤体对感觉输入的抑制作用可能不适用于伤害感受系统,这可能是由于菠菜丘脑途径的特异性以及伤害感受信息对体内稳态的关键作用所致。有趣的是,通常被认为反映了高阶刺激处理(P3'电位)的晚期头皮反应在纺锭过程中得到了显着增强,这表明可能是纺锤体驱动的促进而不是减弱了皮质的伤害感受。

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