Basolateral amygdala oscillations enable fear learning in a biophysical model.

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

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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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。
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。
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