基底外侧杏仁核的振荡使生物物理模型中的恐惧学习成为可能。

Anna Cattani, Don B Arnold, Michelle McCarthy, Nancy Kopell
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摘要

基底外侧杏仁核(BLA)是通过突触可塑性进行恐惧学习的关键部位。啮齿动物研究显示,BLA局部场电位记录中存在显著的低θ(~3-6 Hz)、高θ(~6-12 Hz)和伽马(>30 Hz)节律。然而,目前还不清楚这些节奏在支持可塑性方面起着什么作用。在这里,我们创建了BLA回路的生物物理详细模型,以表明BLA中的几种中间神经元(PV+、SOM+和VIP+)可以关键地参与产生节律;这些节奏促进了一个专门的恐惧回路的形成,该回路是通过依赖于尖峰时间的可塑性的节奏门控形成的。每一类中间神经元都是可塑性所必需的。我们发现低θ节律是成功的恐惧条件反射的生物标志。最后,我们讨论了VIP+细胞释放的肽如何改变可塑性的动力学,以支持必要的精细时机。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Basolateral amygdala oscillations enable fear learning in a biophysical model.

The basolateral amygdala (BLA) is a key site where fear learning takes place through synaptic plasticity. Rodent research shows prominent low theta (~3-6 Hz), high theta (~6-12 Hz), and gamma (>30 Hz) rhythms in the BLA local field potential recordings. However, it is not understood what role these rhythms play in supporting the plasticity. Here, we create a biophysically detailed model of the BLA circuit to show that several classes of interneurons (PV, SOM, and VIP) in the BLA can be critically involved in producing the rhythms; these rhythms promote the formation of a dedicated fear circuit shaped through spike-timing-dependent plasticity. Each class of interneurons is necessary for the plasticity. We find that the low theta rhythm is a biomarker of successful fear conditioning. The model makes use of interneurons commonly found in the cortex and, hence, may apply to a wide variety of associative learning situations.

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A gradual transition toward categorical representations along the visual hierarchy during working memory, but not perception. Molecular logic for cellular specializations that initiate the auditory parallel processing pathways. Bifurcation enhances temporal information encoding in the olfactory periphery. Localized synthesis of molecular chaperones sustains neuronal proteostasis. Basolateral amygdala oscillations enable fear learning in a biophysical model.
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