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急性升高平台诱发应激诱导的痛觉过敏,并改变成年小鼠前扣带皮层的谷氨酸能传递。

Acute elevated platform triggers stress induced hyperalgesia and alters glutamatergic transmission in the adult mice anterior cingulate cortex.

作者信息

Kawakami Koki, Koga Kohei

机构信息

Department of Neurophysiology, Hyogo College of Medicine, Nishinomiya, Hyogo 663-8501, Japan.

Department of Biomedical Chemistry, School of Science and Technology, Kwansei Gakuin University, 2-1 Gakuen, Sanda, Hyogo 669-1337, Japan.

出版信息

IBRO Neurosci Rep. 2021 Feb 3;10:1-7. doi: 10.1016/j.ibneur.2020.12.002. eCollection 2021 Jun.

Abstract

Pain is composed of both physiological and affective/emotional components which potentiate one another. In addition, exposure to stress modulates pain and affective behaviors including, anxiety-like behavior and/or depression-like behaviors. Indeed, chronic exposure to stress has been known to enhance stress-induced hyperalgesia (SIH). The anterior cingulate cortex (ACC) is critically involved in pain sensation and emotions. Animal models of chronic pain, but not acute nociception have been found to induce synaptic plasticity on glutamatergic and GABAergic transmission in the rodent ACC. However, it is unclear whether acute stress exposure could produce SIH and cause synaptic plasticity in the ACC. Accordingly, we studied how acute exposure of stress by the elevated open platform (EOP) could affect mechanical threshold, thermal and cold latency in the adult mice. Thirty minutes of the EOP produced mechanical hypersensitivity lasting for 60 min and thermal hypersensitivity immediately after the exposure. Next, we tested whether the stress could alter the excitatory and inhibitory synaptic transmission in the ACC. We performed whole-cell patch-clamp recordings from layer II/III pyramidal neurons in the ACC and analyzed both glutamatergic and GABAergic transmission in mice following the EOP. Thirty minutes of the EOP altered the rise and decay time of spontaneous glutamatergic AMPA/GluK receptors mediated currents, but did not change the frequency or amplitude of excitatory transmission. By contrast, the kinetics of inhibitory synaptic currents were not altered by the EOP. These results suggest that acute stress by the elevated platform produces SIH and causes synaptic plasticity on excitatory transmission, but not inhibitory transmission in the ACC.

摘要

疼痛由生理和情感/情绪成分组成,二者相互增强。此外,暴露于应激会调节疼痛和情感行为,包括焦虑样行为和/或抑郁样行为。事实上,长期暴露于应激已知会增强应激诱导的痛觉过敏(SIH)。前扣带回皮质(ACC)在疼痛感觉和情绪中起关键作用。慢性疼痛的动物模型,而非急性伤害感受,已被发现会在啮齿动物的ACC中诱导谷氨酸能和γ-氨基丁酸能传递的突触可塑性。然而,尚不清楚急性应激暴露是否会产生SIH并导致ACC中的突触可塑性。因此,我们研究了通过高架开放平台(EOP)进行急性应激暴露如何影响成年小鼠的机械阈值、热潜伏期和冷潜伏期。EOP暴露30分钟会产生持续60分钟的机械性超敏反应以及暴露后立即出现的热超敏反应。接下来,我们测试了应激是否会改变ACC中的兴奋性和抑制性突触传递。我们对ACC中II/III层锥体神经元进行了全细胞膜片钳记录,并分析了EOP处理后小鼠的谷氨酸能和γ-氨基丁酸能传递。EOP暴露30分钟改变了自发谷氨酸能AMPA/谷氨酸钾受体介导电流的上升和衰减时间,但未改变兴奋性传递的频率或幅度。相比之下,EOP并未改变抑制性突触电流的动力学。这些结果表明,高架平台引起的急性应激会产生SIH,并导致ACC中兴奋性传递的突触可塑性,但不会导致抑制性传递的突触可塑性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8cf9/8019816/4dbcfd5f13b9/gr1.jpg

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