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内在神经元周期的离散会影响视交叉上核的约束范围与耦合强度之间的关系。

Dispersion of the intrinsic neuronal periods affects the relationship of the entrainment range to the coupling strength in the suprachiasmatic nucleus.

机构信息

Business School, University of Shanghai for Science and Technology, Shanghai 200093, People's Republic of China.

Leiden Institute for Brain and Cognition, Leiden 2300 RC, The Netherlands.

出版信息

Phys Rev E. 2017 Nov;96(5-1):052207. doi: 10.1103/PhysRevE.96.052207. Epub 2017 Nov 13.

Abstract

Living beings on the Earth are subjected to and entrained (synchronized) to the natural 24-h light-dark cycle. Interestingly, they can also be entrained to an external artificial cycle of non-24-h periods. The range of these periods is called the entrainment range and it differs among species. In mammals, the entrainment range is regulated by a main clock located in the suprachiasmatic nucleus (SCN) which is composed of 10 000 neurons in the brain. Previous works have found that the entrainment range depends on the cellular coupling strength in the SCN. In particular, the entrainment range decreases with the increase of the cellular coupling strength, provided that all the neuronal oscillators are identical. However, the SCN neurons differ in the intrinsic periods that follow a normal distribution in a range from 22 to 28 h. In the present study, taking the dispersion of the intrinsic neuronal periods into account, we examined the relationship between the entrainment range and the coupling strength. Results from numerical simulations and theoretical analyses both show that the relationship is altered to be paraboliclike if the intrinsic neuronal periods are nonidentical, and the maximal entrainment range is obtained with a suitable coupling strength. Our results shed light on the role of the cellular coupling in the entrainment ability of the SCN network.

摘要

地球上的生物受到自然 24 小时明暗周期的影响和约束(同步)。有趣的是,它们也可以被外部非 24 小时周期的人工周期所约束。这些周期的范围被称为约束范围,它因物种而异。在哺乳动物中,约束范围由位于视交叉上核(SCN)的主钟调节,SCN 由大脑中的 10000 个神经元组成。先前的研究发现,约束范围取决于 SCN 中的细胞耦合强度。特别是,只要所有神经元振荡器都是相同的,约束范围就会随着细胞耦合强度的增加而减小。然而,SCN 神经元的内在周期存在差异,其内在周期呈正态分布,范围在 22 到 28 小时之间。在本研究中,考虑到内在神经元周期的分散性,我们研究了约束范围与耦合强度之间的关系。数值模拟和理论分析的结果都表明,如果内在神经元周期不同,这种关系会改变为抛物线形,并且在适当的耦合强度下可以获得最大的约束范围。我们的结果揭示了细胞耦合在 SCN 网络约束能力中的作用。

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