Institute of Cognitive Neuroscience and Psychology, Research Centre for Natural Sciences, Hungarian Academy of Sciences, Budapest, Hungary.
Department of Physiology and Neurobiology, Eötvös Loránd University, Budapest, Hungary.
J Physiol. 2019 Aug;597(15):4069-4086. doi: 10.1113/JP277664. Epub 2019 Jun 13.
Sleep spindle frequency positively, duration negatively correlates with brain temperature. Local heating of the thalamus produces similar effects in the heated area. Thalamic network model corroborates temperature dependence of sleep spindle frequency. Brain temperature shows spontaneous microfluctuations during both anesthesia and natural sleep. Larger fluctuations are associated with epochs of REM sleep. Smaller fluctuations correspond to the alteration of spindling and delta epochs of infra-slow oscillation.
Every form of neural activity depends on temperature, yet its relationship to brain rhythms is poorly understood. In this work we examined how sleep spindles are influenced by changing brain temperatures and how brain temperature is influenced by sleep oscillations. We employed a novel thermoelectrode designed for measuring temperature while recording neural activity. We found that spindle frequency is positively correlated and duration negatively correlated with brain temperature. Local heating of the thalamus replicated the temperature dependence of spindle parameters in the heated area only, suggesting biophysical rather than global modulatory mechanisms, a finding also supported by a thalamic network model. Finally, we show that switches between oscillatory states also influence brain temperature on a shorter and smaller scale. Epochs of paradoxical sleep as well as the infra-slow oscillation were associated with brain temperature fluctuations below 0.2°C. Our results highlight that brain temperature is massively intertwined with sleep oscillations on various time scales.
睡眠纺锤波频率与脑温呈正相关,持续时间与脑温呈负相关。丘脑局部加热会在加热区域产生类似的效果。丘脑网络模型证实了睡眠纺锤波频率对温度的依赖性。脑温在麻醉和自然睡眠期间都会自发地出现微小波动。较大的波动与 REM 睡眠期相关。较小的波动与纺锤波和慢波振荡的 delta 期的改变相对应。
每种形式的神经活动都依赖于温度,但它与脑节律的关系还不太清楚。在这项工作中,我们研究了脑温如何影响睡眠纺锤波,以及睡眠振荡如何影响脑温。我们采用了一种新的热电电极,用于在记录神经活动的同时测量温度。我们发现,纺锤波频率与脑温呈正相关,持续时间与脑温呈负相关。丘脑局部加热仅在加热区域复制了与纺锤波参数相关的温度依赖性,这表明是生物物理而非全局调节机制,这一发现也得到了丘脑网络模型的支持。最后,我们表明,振荡状态之间的转换也会在更短和更小的时间尺度上影响脑温。矛盾睡眠期和慢波振荡与脑温波动低于 0.2°C 有关。我们的结果强调了脑温在各种时间尺度上与睡眠振荡之间存在着巨大的相互作用。