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Stability of neocortical synapses across sleep and wake states during the critical period in rats

机译:大鼠关键时期睡眠和唤醒状态睡眠和苏醒状态的稳定性

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摘要

Sleep is important for brain plasticity, but its exact function remains mysterious. An influential but controversial idea is that a crucial function of sleep is to drive widespread downscaling of excitatory synaptic strengths. Here, we used real-time sleep classification, ex vivo measurements of postsynaptic strength, and in vivo optogenetic monitoring of thalamocortical synaptic efficacy to ask whether sleep and wake states can constitutively drive changes in synaptic strength within the neocortex of juvenile rats. We found that miniature excitatory postsynaptic current amplitudes onto L4 and L2/3 pyramidal neurons were stable across sleep- and wake-dense epochs in both primary visual (V1) and prefrontal cortex (PFC). Further, chronic monitoring of thalamocortical synaptic efficacy in V1 of freely behaving animals revealed stable responses across even prolonged periods of natural sleep and wake. Together, these data demonstrate that sleep does not drive widespread downscaling of synaptic strengths during the highly plastic critical period in juvenile animals. Whether this remarkable stability across sleep and wake generalizes to the fully mature nervous system remains to be seen.
机译:睡眠对大脑可塑性很重要,但其确切的功能仍然是神秘的。有影响力但有争议的想法是睡眠的重要功能是推动兴奋性突触强度的广泛镇压。在这里,我们使用了实时睡眠分类,前体内测量的突触强度,以及体内脊髓素突触效果的临床监测,询问睡眠和唤醒状态是否可以构成幼年大鼠新型突触强度的变化。我们发现,在L4和L2 / 3锥形神经元上的微型兴奋性突触突出幅度在初级视觉(V1)和前额叶皮质(PFC)中穿过睡眠和唤醒致密的时期稳定。此外,慢性监测自由行为动物的V1 v1中的慢性监测甚至延长的自然睡眠和唤醒的稳定反应。这些数据在一起表明睡眠不会在少年动物的高度塑性关键时期期间广泛推动突触强度的广泛缩放。在睡眠和唤醒方面的这种显着稳定性仍然可以看到完全成熟的神经系统。

著录项

  • 期刊名称 eLife
  • 作者单位
  • 年(卷),期 2021(-1),-1
  • 年度 2021
  • 页码 -1
  • 总页数 28
  • 原文格式 PDF
  • 正文语种
  • 中图分类
  • 关键词

    机译:鼠;

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