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小鼠慢波活动去极化状态下皮质γ同步性降低。

Reduction in cortical gamma synchrony during depolarized state of slow wave activity in mice.

机构信息

Center for Neuroscience, Korea Institute of Science and Technology Seoul, South Korea.

VA Boston Healthcare System, Department of Psychiatry, Harvard Medical School Brockton, MA, USA.

出版信息

Front Syst Neurosci. 2013 Dec 16;7:107. doi: 10.3389/fnsys.2013.00107. eCollection 2013.

Abstract

EEG gamma band oscillations have been proposed to account for the neural synchronization crucial for perceptual integration. While increased gamma power and synchronization is generally observed during cognitive tasks performed during wake, several studies have additionally reported increased gamma power during sleep or anesthesia, raising questions about the characteristics of gamma oscillation during impaired consciousness and its role in conscious processing. Phase-amplitude modulation has been observed between slow wave activity (SWA, 0.5-4 Hz) and gamma oscillations during ketamine/xylazine anesthesia or sleep, showing increased gamma activity corresponding to the depolarized (ON) state of SWA. Here we divided gamma activity into its ON and OFF (hyperpolarized) state components based on the phase of SWA induced by ketamine/xylazine anesthesia and compared their power and synchrony with wake state levels in mice. We further investigated the state-dependent changes in both gamma power and synchrony across primary motor and primary somatosensory cortical regions and their interconnected thalamic regions throughout anesthesia and recovery. As observed previously, gamma power was as high as during wake specifically during the ON state of SWA. However, the synchrony of this gamma activity between somatosensory-motor cortical regions was significantly reduced compared to the baseline wake state. In addition, the somatosensory-motor cortical synchrony of gamma oscillations was reduced and restored in an anesthetic state-dependent manner, reflecting the changing depth of anesthesia. Our results provide evidence that during anesthesia changes in long-range information integration between cortical regions might be more critical for changes in consciousness than changes in local gamma oscillatory power.

摘要

脑电 γ 波段振荡被认为是对感知整合至关重要的神经同步的基础。虽然在清醒状态下进行认知任务时通常会观察到γ 波功率和同步性增加,但几项研究还报告了在睡眠或麻醉期间γ 波功率增加,这引发了关于意识障碍期间γ 振荡特征及其在意识处理中的作用的问题。在氯胺酮/甲苯噻嗪麻醉或睡眠期间,观察到慢波活动(SWA,0.5-4 Hz)和γ 振荡之间的相位-幅度调制,显示出与 SWA 的去极化(ON)状态相对应的γ 活动增加。在这里,我们根据氯胺酮/甲苯噻嗪麻醉诱导的 SWA 的相位将 γ 活动分为其 ON 和 OFF(超极化)状态分量,并将它们的功率和同步性与小鼠清醒状态水平进行了比较。我们进一步研究了在麻醉和恢复过程中,主要运动和初级体感皮层区域及其相互连接的丘脑区域中,γ 功率和同步性的状态依赖性变化。正如之前观察到的,γ 波功率与清醒状态时一样高,特别是在 SWA 的 ON 状态下。然而,与基线清醒状态相比,这种体感运动皮层区域之间的γ 活动同步性显著降低。此外,体感运动皮层γ 振荡的同步性以麻醉状态依赖性的方式降低并恢复,反映了麻醉深度的变化。我们的结果提供了证据,表明在麻醉期间,皮质区域之间长程信息整合的变化可能比局部 γ 振荡功率的变化对意识变化更为关键。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e66f/3863989/0ab27a0be98a/fnsys-07-00107-g0001.jpg

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