Laboratory of Systemic Organization of Neurons, Institute of Theoretical and Experimental Biophysics of Russian Academy of Sciences, Pushchino, Russia.
Front Neural Circuits. 2023 Mar 7;17:1134705. doi: 10.3389/fncir.2023.1134705. eCollection 2023.
The vast majority of studies on hippocampal rhythms have been conducted on animals or humans in situations where their attention was focused on external stimuli or solving cognitive tasks. These studies formed the basis for the idea that rhythmical activity coordinates the work of neurons during information processing. However, at rest, when attention is not directed to external stimuli, brain rhythms do not disappear, although the parameters of oscillatory activity change. What is the functional load of rhythmical activity at rest? Hippocampal oscillatory activity during rest is called the non-theta state, as opposed to the theta state, a characteristic activity during active behavior. We dedicate our review to discussing the present state of the art in the research of the non-theta state. The key provisions of the review are as follows: (1) the non-theta state has its own characteristics of oscillatory and neuronal activity; (2) hippocampal non-theta state is possibly caused and maintained by change of rhythmicity of medial septal input under the influence of raphe nuclei; (3) there is no consensus in the literature about cognitive functions of the non-theta-non-ripple state; and (4) the antagonistic relationship between theta and delta rhythms observed in rodents is not always observed in humans. Most attention is paid to the non-theta-non-ripple state, since this aspect of hippocampal activity has not been investigated properly and discussed in reviews.
绝大多数关于海马体节律的研究都是在动物或人类身上进行的,在这些研究中,他们的注意力集中在外部刺激或解决认知任务上。这些研究为这样一种观点奠定了基础,即节律性活动在信息处理过程中协调神经元的工作。然而,在休息时,当注意力没有集中在外部刺激上时,大脑节律并不会消失,尽管振荡活动的参数会发生变化。那么,在休息时,节律性活动的功能负荷是多少呢?海马体在休息时的振荡活动被称为非 theta 状态,与活跃行为时的特征活动 theta 状态相反。我们的综述致力于讨论当前对非 theta 状态研究的最新进展。综述的关键内容如下:(1)非 theta 状态具有其自身的振荡和神经元活动特征;(2)海马体的非 theta 状态可能是由中隔核输入的节律性变化引起和维持的,受缰核的影响;(3)文献中对于非 theta 非涟漪状态的认知功能尚无共识;(4)在啮齿动物中观察到的 theta 和 delta 节律之间的拮抗关系并不总是在人类中观察到。由于这方面的海马体活动尚未得到适当的研究和综述讨论,因此大多数注意力都集中在非 theta 非涟漪状态上。