The elevated open platform stress suppresses excitatory synaptic transmissionin the layer V anterior cingulate cortex.

IF 2.9 3区 医学 Q2 NEUROSCIENCES Neuroscience Pub Date : 2024-10-05 DOI:10.1016/j.neuroscience.2024.10.009
Ryo Kawabata, Ayumi Fujita, Yoshihiko Oke, Ikuko Yao, Kohei Koga
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Abstract

There are various forms of stress including; physical, psychological and social stress. Exposure to physical stress can lead to physical sensations (e.g. hyperalgesia) and negative emotions including anxiety and depression in animals and humans. Recently, our studies in mice have shown that acute physical stress induced by the elevated open platform (EOP) can provoke long-lasting mechanical hypersensitivity. This effect appears to be related to activity in the anterior cingulate cortex (ACC) at the synaptic level. Indeed, EOP exposure induces synaptic plasticity in layer II/III pyramidal neurons from the ACC. However, it is still unclear whether or not EOP exposure alters intrinsic properties and synaptic transmission in layer V pyramidal neurons. This is essential because these neurons are known to be a primary output to subcortical structures which may ultimately impact the behavioral stress response. Here, we studied both intrinsic properties and excitatory/inhibitory synaptic transmission by using whole-cell patch-clamp method in brain slice preparations. The EOP exposure did not change intrinsic properties including resting membrane potentials and action potentials. In contrast, EOP exposure suppressed the frequency of miniature and spontaneous excitatory synaptic transmission with an alteration of kinetics of AMPA/GluK receptors. EOP exposure also reduced evoked synaptic transmission induced by electrical stimulation. Furthermore, we investigated projection-selective responses of the mediodorsal thalamus to the layer V ACC neurons. EOP exposure produced short-term depression in excitatory synaptic transmission on thalamo-ACC projections. These results suggest that the EOP stress provokes abnormal excitatory synaptic transmission in layer V pyramidal neurons of the ACC.

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开放平台压力的升高抑制了第 V 层前扣带回皮层的兴奋性突触传递。
压力有多种形式,包括生理压力、心理压力和社会压力。暴露在物理压力下会导致动物和人类的身体感觉(如痛觉过敏)和负面情绪,包括焦虑和抑郁。最近,我们在小鼠身上进行的研究表明,高架开放平台(EOP)诱发的急性身体压力可引起持久的机械过敏。这种效应似乎与前扣带回皮层(ACC)在突触水平上的活动有关。事实上,EOP 暴露会诱导 ACC II/III 层锥体神经元的突触可塑性。但是,EOP 是否会改变第五层锥体神经元的突触传递,目前仍不清楚。这一点至关重要,因为众所周知,这些神经元是皮层下结构的主要输出,而皮层下结构最终可能会影响行为应激反应。在这里,我们采用全细胞膜片钳法在脑片制备物中研究了神经元的内在特性和兴奋/抑制性突触传递。暴露于 EOP 不会改变包括静息膜电位和动作电位在内的内在特性。相反,EOP抑制了微型和自发兴奋性突触传递的频率,改变了AMPA/GluK受体的动力学。EOP 还减少了电刺激诱发的突触传递。此外,我们还研究了丘脑内侧对第 V 层 ACC 神经元的投射选择性反应。EOP 对丘脑-ACC 投射的兴奋性突触传递产生了短期抑制。这些结果表明,EOP 引起的急性应激会导致 ACC 第 V 层锥体神经元的兴奋性突触传递异常。
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来源期刊
Neuroscience
Neuroscience 医学-神经科学
CiteScore
6.20
自引率
0.00%
发文量
394
审稿时长
52 days
期刊介绍: Neuroscience publishes papers describing the results of original research on any aspect of the scientific study of the nervous system. Any paper, however short, will be considered for publication provided that it reports significant, new and carefully confirmed findings with full experimental details.
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