Neuroscience Institute, School of Medicine, New York University, New York City, New York.
Department of Neurology, School of Medicine, New York University, New York City, New York.
J Neurophysiol. 2022 May 1;127(5):1417-1425. doi: 10.1152/jn.00047.2022. Epub 2022 Apr 7.
Biochemical mechanisms are temperature dependent. Brain temperature shows wide variations across brain states, and such changes may explain quantitative changes in network oscillations. Here, we report on the relationship between various hippocampal sharp wave ripple features to brain temperature. Ripple frequency, occurrence rate, and duration correlated with temperature dynamics. By focal manipulation of the brain temperature in the hippocampal CA1 region, we show that ripple frequency can be increased and decreased by local heating and cooling, respectively. Changes of other parameters, such as the rate of sharp wave-ripple complex (SPW-R) and ripple duration were not consistently affected. Our findings suggest that brain temperature in the CA1 region plays a leading role in affecting ripple frequency, whereas other parameters of SPW-Rs may be determined by mechanisms upstream from the CA1 region. These findings illustrate that physiological variations of brain temperature exert important effects on hippocampal circuit operations. During physiological conditions, brain temperature fluctuates approximately 3°C between sleep and active waking. Here, we show that features of hippocampal ripples, including the rate of occurrence, peak frequency, and duration are correlated with brain temperature variations. Focal bidirectional manipulation of temperature in the hippocampal CA1 region in awake rodents show that ripple frequency can be altered in the direction expected from the correlational observations, implying that temperature plays a significant role.
生化机制是依赖于温度的。脑温在不同的脑状态下表现出广泛的变化,这种变化可能解释了网络振荡的定量变化。在这里,我们报告了各种海马体尖波纹特征与脑温之间的关系。纹波频率、出现率和持续时间与温度动态相关。通过在海马体 CA1 区进行脑温的焦点操作,我们表明纹波频率可以分别通过局部加热和冷却来增加和减少。其他参数的变化,如尖波纹(SPW-R)的速率和纹波持续时间,并没有一致受到影响。我们的发现表明,CA1 区的脑温在影响纹波频率方面起着主导作用,而 SPW-R 的其他参数可能由 CA1 区上游的机制决定。这些发现表明,脑温的生理变化对海马体电路的运作有重要影响。在生理条件下,睡眠和活跃清醒之间的脑温波动约为 3°C。在这里,我们表明海马体纹波的特征,包括出现率、峰值频率和持续时间与脑温变化相关。在清醒的啮齿动物中对海马体 CA1 区的温度进行双向焦点操作表明,纹波频率可以按照相关观察的预期方向改变,这意味着温度起着重要作用。