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Simulation study on dynamics transition in neuronal activity during sleep cycle by using asynchronous and symmetry neural network model.

作者信息

Nakao M, Takahashi T, Mizutani Y, Yamamoto M

机构信息

Department of Information Engineering, Faculty of Engineering, Tohoku University, Sendai, Japan.

出版信息

Biol Cybern. 1990;63(4):243-50. doi: 10.1007/BF00203447.

DOI:10.1007/BF00203447
PMID:2207199
Abstract

We have found that single neuronal activities in different regions in the brain commonly exhibit the distinct dynamics transition during sleep-waking cycle in cats. Especially, power spectral densities of single neuronal activities change their profiles from the white to the 1/f along with sleep cycle from slow wave sleep (SWS) to paradoxical sleep (PS). Each region has different neural network structure and physiological function. This suggests a globally working mechanism may be underlying the dynamics transition we concern. Pharmacological studies have shown that a change in a wide-spread serotonergic input to these regions possibly causes the neuronal dynamics transition during sleep cycle. In this paper, based on these experimental results, an asynchronous and symmetry neural network model including inhibitory input, which represents the role of the serotonergic system, is utilized to examine the reality of our idea that the inhibitory input level varying during sleep cycle induce that transition. Simulation results show that the globally applied inhibitory input can control the dynamics of single neuronal state evolution in the artificial neural network: 1/f-like power spectral density profiles result under weak inhibition, which possibly corresponds to PS, and white profiles under strong inhibition, which possibly corresponds to SWS. An asynchronous neural network is known to change its state according to its energy function. The geometrical structure of network energy function is thought to vary along with the change in inhibitory level, which is expected to cause the dynamics transition of neuronal state evolution in the network model. These simulation results support the possibility that the serotonergic system is essential for the dynamics transition of single neuronal activities during sleep cycle.

摘要

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本文引用的文献

1
Brain stem reticular formation and activation of the EEG.脑干网状结构与脑电图激活
Electroencephalogr Clin Neurophysiol. 1949 Nov;1(4):455-73.
2
Storing infinite numbers of patterns in a spin-glass model of neural networks.在神经网络的自旋玻璃模型中存储无限数量的模式。
Phys Rev Lett. 1985 Sep 30;55(14):1530-1533. doi: 10.1103/PhysRevLett.55.1530.
3
Neural networks and physical systems with emergent collective computational abilities.具有涌现集体计算能力的神经网络与物理系统。
Proc Natl Acad Sci U S A. 1982 Apr;79(8):2554-8. doi: 10.1073/pnas.79.8.2554.
4
The function of dream sleep.梦睡眠的功能。
Nature. 1983;304(5922):111-4. doi: 10.1038/304111a0.
5
Bulbo-thalamic neurons related to thalamocortical activation processes during paradoxical sleep.在异相睡眠期间与丘脑皮质激活过程相关的延髓-丘脑神经元。
Exp Brain Res. 1984;54(3):463-75. doi: 10.1007/BF00235472.
6
Molecular biology of learning: modulation of transmitter release.学习的分子生物学:神经递质释放的调节
Science. 1982 Oct 29;218(4571):433-43. doi: 10.1126/science.6289442.
7
A method of statistical neurodynamics.
Kybernetik. 1974 Apr 26;14(4):201-15. doi: 10.1007/BF00274806.
8
The role of monoamines and acetylcholine-containing neurons in the regulation of the sleep-waking cycle.单胺能和胆碱能神经元在睡眠-觉醒周期调节中的作用。
Ergeb Physiol. 1972;64:166-307. doi: 10.1007/3-540-05462-6_2.
9
L-Tryptophan as a selective histochemical marker for serotonergic neurons in single-cell recording studies.在单细胞记录研究中,L-色氨酸作为5-羟色胺能神经元的一种选择性组织化学标记物。
Brain Res. 1974 Dec 6;81(2):364-72. doi: 10.1016/0006-8993(74)90954-8.
10
"Neural" computation of decisions in optimization problems.优化问题中决策的“神经”计算。
Biol Cybern. 1985;52(3):141-52. doi: 10.1007/BF00339943.