Headley Drew B, Kanta Vasiliki, Paré Denis
Center for Molecular and Behavioral Neuroscience, Rutgers, The State University of New Jersey, Newark, New Jersey.
Center for Molecular and Behavioral Neuroscience, Rutgers, The State University of New Jersey, Newark, New Jersey
J Neurophysiol. 2017 Feb 1;117(2):556-565. doi: 10.1152/jn.00644.2016. Epub 2016 Nov 9.
The hippocampus generates population events termed sharp-wave ripples (SWRs) and dentate spikes (DSs). While little is known about DSs, SWR-related hippocampal discharges during sleep are thought to replay prior waking activity, reactivating the cortical networks that encoded the initial experience. During slow-wave sleep, such reactivations likely occur during up-states, when most cortical neurons are depolarized. However, most studies have examined the relationship between SWRs and up-states measured in single neocortical regions. As a result, it is currently unclear whether SWRs are associated with particular patterns of widely distributed cortical activity. Additionally, no such investigation has been carried out for DSs. The present study addressed these questions by recording SWRs and DSs from the dorsal hippocampus simultaneously with prefrontal, sensory (visual and auditory), perirhinal, and entorhinal cortices in naturally sleeping rats. We found that SWRs and DSs were associated with up-states in all cortical regions. Up-states coinciding with DSs and SWRs exhibited increased unit activity, power in the gamma band, and intraregional gamma coherence. Unexpectedly, interregional gamma coherence rose much more strongly in relation to DSs than to SWRs. Whereas the increase in gamma coherence was time locked to DSs, that seen in relation to SWRs was not. These observations suggest that SWRs are related to the strength of up-state activation within individual regions throughout the neocortex but not so much to gamma coherence between different regions. Perhaps more importantly, DSs coincided with stronger periods of interregional gamma coherence, suggesting that they play a more important role than previously assumed.
NEW & NOTEWORTHY: Off-line cortico-hippocampal interactions are thought to support memory consolidation. We surveyed the relationship between hippocampal sharp-wave ripples (SWRs) and dentate spikes (DSs) with up-states across multiple cortical regions. SWRs and DSs were associated with increased cortical gamma oscillations. Interregional gamma coherence rose much more strongly in relation to DSs than to SWRs. Moreover, it was time locked to DSs but not SWRs. These results have important implications for current theories of systems memory consolidation during sleep.
海马体产生称为尖波涟漪(SWRs)和齿状回尖峰(DSs)的群体事件。虽然对DSs了解甚少,但睡眠期间与SWR相关的海马体放电被认为会重演先前的清醒活动,重新激活编码初始体验的皮质网络。在慢波睡眠期间,这种重新激活可能发生在大多数皮质神经元去极化的上升期。然而,大多数研究都考察了SWRs与在单个新皮质区域测量的上升期之间的关系。因此,目前尚不清楚SWRs是否与广泛分布的皮质活动的特定模式相关。此外,尚未对DSs进行过此类研究。本研究通过在自然睡眠的大鼠中同时记录背侧海马体的SWRs和DSs以及前额叶、感觉(视觉和听觉)、嗅周和内嗅皮质来解决这些问题。我们发现SWRs和DSs与所有皮质区域的上升期相关。与DSs和SWRs同时出现的上升期表现出单位活动增加、γ波段功率增加以及区域内γ相干性增加。出乎意料的是,区域间γ相干性相对于DSs的增加比相对于SWRs的增加要强得多。虽然γ相干性的增加与DSs在时间上锁定,但与SWRs相关的增加并非如此。这些观察结果表明,SWRs与整个新皮质中各个区域内上升期激活的强度有关,但与不同区域之间的γ相干性关系不大。也许更重要的是,DSs与区域间γ相干性更强的时期同时出现,这表明它们发挥的作用比以前假设的更重要。
离线皮质 - 海马体相互作用被认为有助于记忆巩固。我们研究了海马体尖波涟漪(SWRs)和齿状回尖峰(DSs)与多个皮质区域的上升期之间的关系。SWRs和DSs与皮质γ振荡增加有关。区域间γ相干性相对于DSs的增加比相对于SWRs的增加要强得多。此外,它与DSs在时间上锁定,但与SWRs无关。这些结果对当前关于睡眠期间系统记忆巩固的理论具有重要意义。