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本文引用的文献

1
N-methyl-d-aspartate (NMDA) receptor dysfunction or dysregulation: the final common pathway on the road to schizophrenia?N-甲基-D-天冬氨酸(NMDA)受体功能障碍或失调:精神分裂症的最终共同通路?
Brain Res Bull. 2010 Sep 30;83(3-4):108-21. doi: 10.1016/j.brainresbull.2010.04.006. Epub 2010 Apr 24.
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Cortical oscillatory activity is critical for working memory as revealed by deficits in early-onset schizophrenia.如早发性精神分裂症患者所表现出的缺陷所示,皮质振荡活动对工作记忆至关重要。
J Neurosci. 2009 Jul 29;29(30):9481-9. doi: 10.1523/JNEUROSCI.1428-09.2009.
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Steady state and induced auditory gamma deficits in schizophrenia.精神分裂症中的稳态和诱发性听觉γ波缺陷
Neuroimage. 2009 Oct 1;47(4):1711-9. doi: 10.1016/j.neuroimage.2009.03.085. Epub 2009 Apr 14.
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Getting the cue: sensory contributions to auditory emotion recognition impairments in schizophrenia.获得线索:精神分裂症听觉情绪识别障碍的感觉贡献。
Schizophr Bull. 2010 May;36(3):545-56. doi: 10.1093/schbul/sbn115. Epub 2008 Sep 12.
5
GABA neurons and the mechanisms of network oscillations: implications for understanding cortical dysfunction in schizophrenia.γ-氨基丁酸(GABA)能神经元与网络振荡机制:对理解精神分裂症皮质功能障碍的启示
Schizophr Bull. 2008 Sep;34(5):944-61. doi: 10.1093/schbul/sbn070. Epub 2008 Jun 26.
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Gamma-band auditory steady-state responses are impaired in first episode psychosis.γ波段听觉稳态反应在首发精神病中受损。
Biol Psychiatry. 2008 Sep 1;64(5):369-75. doi: 10.1016/j.biopsych.2008.02.021. Epub 2008 Apr 8.
7
Modeling GABA alterations in schizophrenia: a link between impaired inhibition and altered gamma and beta range auditory entrainment.精神分裂症中γ-氨基丁酸(GABA)改变的建模:抑制受损与γ和β频段听觉诱捕改变之间的联系
J Neurophysiol. 2008 May;99(5):2656-71. doi: 10.1152/jn.00870.2007. Epub 2008 Feb 20.
8
Synaptic mechanisms of synchronized gamma oscillations in inhibitory interneuron networks.抑制性中间神经元网络中同步γ振荡的突触机制
Nat Rev Neurosci. 2007 Jan;8(1):45-56. doi: 10.1038/nrn2044.
9
Impairments in frontal cortical gamma synchrony and cognitive control in schizophrenia.精神分裂症患者额叶皮质γ同步性和认知控制受损。
Proc Natl Acad Sci U S A. 2006 Dec 26;103(52):19878-83. doi: 10.1073/pnas.0609440103. Epub 2006 Dec 14.
10
Dopamine increases inhibition in the monkey dorsolateral prefrontal cortex through cell type-specific modulation of interneurons.多巴胺通过对中间神经元的细胞类型特异性调节,增加猴子背外侧前额叶皮层的抑制作用。
Cereb Cortex. 2007 May;17(5):1020-32. doi: 10.1093/cercor/bhl012. Epub 2006 Jun 13.

精神分裂症中的多巴胺和伽马波段同步——来自计算和实证研究的见解。

Dopamine and gamma band synchrony in schizophrenia--insights from computational and empirical studies.

机构信息

Program in Neural Computation, Carnegie Mellon University, Pittsburgh, PA 15289, USA.

出版信息

Eur J Neurosci. 2012 Jul;36(2):2146-55. doi: 10.1111/j.1460-9568.2012.08071.x.

DOI:10.1111/j.1460-9568.2012.08071.x
PMID:22805060
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3697121/
Abstract

Dopamine modulates cortical circuit activity in part through its actions on GABAergic interneurons, including increasing the excitability of fast-spiking interneurons. Though such effects have been demonstrated in single cells, there are no studies that examine how such mechanisms may lead to the effects of dopamine at a neural network level. With this motivation, we investigated the effects of dopamine on synchronization in a simulated neural network composed of excitatory and fast-spiking inhibitory Wang-Buzsaki neurons. The effects of dopamine were implemented through varying leak K+ conductance of the fast-spiking interneurons and the network synchronization within the gamma band (∼40 Hz) was analyzed. Parametrically varying the leak K+ conductance revealed an inverted-U shaped relationship, with low gamma band power at both low and high conductance levels and optimal synchronization at intermediate conductance levels. We also examined the effects of modulating excitability of the inhibitory neurons more generically using an idealized model with theta neurons, with similar findings. Moreover, such a relationship holds when the external input is both tonic and periodic. Our computational results mirror our empirical study of dopamine modulation in schizophrenia and healthy controls, which showed that amphetamine administration increased gamma power in patients but decreased it in controls. Together, our computational and empirical investigations indicate that dopamine can modulate cortical gamma band synchrony in an inverted-U fashion and that the physiologic effects of dopamine on single fast-spiking interneurons can give rise to such non-monotonic effects at the network level.

摘要

多巴胺通过其对 GABA 能中间神经元的作用(包括增加快速放电中间神经元的兴奋性)来调节皮质回路活动。尽管在单个细胞中已经证明了这种作用,但目前还没有研究探讨这些机制如何导致多巴胺在神经网络水平上的作用。基于这一动机,我们研究了多巴胺对由兴奋性和快速放电抑制性 Wang-Buzsaki 神经元组成的模拟神经网络中同步的影响。通过改变快速放电中间神经元的漏钾电导来实现多巴胺的作用,并分析网络在γ频段(约 40Hz)内的同步。参数变化漏钾电导显示出倒 U 形关系,在低和高电导水平下γ频段功率较低,在中间电导水平下同步最佳。我们还使用具有θ神经元的理想化模型更普遍地研究了调节抑制性神经元兴奋性的影响,结果相似。此外,当外部输入既是紧张的又是周期性的时,这种关系仍然存在。我们的计算结果与我们在精神分裂症和健康对照中的多巴胺调节的实证研究相吻合,研究表明安非他命给药增加了患者的γ功率,但降低了对照组的γ功率。总之,我们的计算和实证研究表明,多巴胺可以以倒 U 形方式调节皮质γ频段同步,多巴胺对单个快速放电中间神经元的生理作用可以在网络水平上产生这种非单调效应。