The blockade of μ‑opioid receptors in the lateral hypothalamus enhances panic attack‑like behaviour and diminishes defensive antinociception.

IF 1.4 4区 医学 Q4 NEUROSCIENCES Acta neurobiologiae experimentalis Pub Date : 2022-01-01 DOI:10.55782/ane-2022-020
Bianca Feitosa Maia Fernandes, Diogo Rios de Avila, Vanessa Cristina Santana, Talles Henrique Pichinelli Maffei, Rafaela Vieira Streg, Júlia Serpa Vale, Rodolfo Cassimiro de Araújo Berber, Rithiele Cristina de Oliveira, Norberto Cysne Coimbra, Ricardo de Oliveira
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引用次数: 1

Abstract

The lateral hypothalamus (LH) sends neural pathways to structures involved on predator‑related defensive behaviours, escape and antinociception. The aim of this study was to investigate the role played by μ-opioid receptors located on LH neurons in defensive behaviour and unconditioned fear‑induced antinociception elicited by electric stimulation of LH. To achieve the goals, the μ1-opioid receptor selective antagonist naloxonazine was administered at different concentrations in the LH, and the defensive behaviour and fear‑induced antinociception elicited by electrical stimulation of LH were evaluated. The electrical stimulation of LH caused escape behaviour followed by defensive antinociception. Microinjections of naloxonazine in a concentration of 5.0 μg/0.2 μL in the LH decreased the aversive stimulus‑induced escape behaviour thresholds, but diminished defensive antinociception. These findings suggest that μ-opioid receptors of LH can be critical to panic attack‑related symptoms and facilitate the unconditioned fear‑induced antinociception produced by LH neurons activation.

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阻断下丘脑外侧的μ -阿片受体可增强惊恐发作样行为,并减弱防御性抗感觉。
外侧下丘脑(LH)向与捕食者相关的防御行为、逃避和抗感觉有关的结构发送神经通路。本研究旨在探讨位于黄体侧神经元上的μ-阿片受体在黄体侧神经元电刺激引起的防御行为和无条件恐惧诱导的抗痛觉中的作用。为了达到这个目的,我们在LH中给予不同浓度的μ1-阿片受体选择性拮抗剂纳洛唑嗪,并观察电刺激LH引起的防御行为和恐惧诱导的抗痛感。LH的电刺激引起逃逸行为,随后是防御性抗痛觉。微注射浓度为5.0 μg/0.2 μL的纳洛唑嗪可降低小鼠的厌恶刺激诱发的逃避行为阈值,但可降低小鼠的防御性抗痛觉反应。这些发现表明,LH的μ-阿片受体可能对惊恐发作相关症状至关重要,并促进由LH神经元激活产生的无条件恐惧诱导的抗感觉。
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来源期刊
CiteScore
2.20
自引率
7.10%
发文量
40
审稿时长
>12 weeks
期刊介绍: Acta Neurobiologiae Experimentalis (ISSN: 0065-1400 (print), eISSN: 1689-0035) covers all aspects of neuroscience, from molecular and cellular neurobiology of the nervous system, through cellular and systems electrophysiology, brain imaging, functional and comparative neuroanatomy, development and evolution of the nervous system, behavior and neuropsychology to brain aging and pathology, including neuroinformatics and modeling.
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