Mechanical activation of vagal afferents involves opposing cation and TREK1 currents and NO regulation.

IF 1.7 4区 医学 Q3 PHARMACOLOGY & PHARMACY Canadian journal of physiology and pharmacology Pub Date : 2023-10-01 Epub Date: 2023-06-13 DOI:10.1139/cjpp-2022-0345
Sung Jin Park, Carter G Zides, Michael J Beyak
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Abstract

Vagal afferents convey signals of mechanical stimulation in the gut to the brain, which is essential for the regulation of food intake. However, ion channels sensing mechanical stimuli are not fully understood. This study aimed to examine the ionic currents activated by mechanical stimulation and a possible neuro-modulatory role of nitric oxide on vagal afferents. Nodose neuronal currents and potentials, and intestinal afferent firing by mechanical stimulation were measured by whole-cell patch clamp, and in vitro afferent recording, respectively. Osmotically activated cation and two-pore domain K+ currents were identified in nodose neurons. The membrane potential displayed a biphasic change under hypotonic stimulation. Cation channel-mediated depolarization was followed by a hyperpolarization mediated by K+ channels. The latter was inhibited by l-methionine (TREK1 channel inhibitor) and l-NNA (nitric oxide synthase inhibitor). Correspondingly, mechanical stimulation activated opposing cation and TREK1 currents. NOS inhibition decreased TREK1 currents and potentiated jejunal afferent nerve firing induced by mechanical stimuli. This study suggested a novel activation mechanism of ion channels underlying adaptation under mechanical distension in vagal afferent neurons. The guts' ability to perceive mechanical stimuli is vital in determining how it responds to food intake. The mechanosensation through ion channels could initiate and control gut function.

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迷走神经传入的机械激活涉及相反的阳离子和TREK1电流以及NO调节。
迷走神经将肠道中的机械刺激信号传递到大脑,这对调节食物摄入至关重要。然而,感测机械刺激的离子通道还没有被完全理解。本研究旨在检测机械刺激激活的离子电流,以及一氧化氮对迷走神经传入的可能神经调节作用。通过全细胞膜片钳和体外传入记录分别测量结节神经元电流和电位以及机械刺激引起的肠传入放电。在结节神经元中发现了渗透激活的阳离子和两个孔结构域K+电流。膜电位在低渗刺激下呈现双相变化。阳离子通道介导的去极化之后是由K+通道介介导的超极化。后者被l-蛋氨酸(TREK1通道抑制剂)和l-NNA(一氧化氮合酶抑制剂)抑制。相应地,机械刺激激活了相反的阳离子和TREK1电流。NOS抑制降低了TREK1电流,并增强了机械刺激诱导的空肠传入神经放电。这项研究提出了迷走神经传入神经元在机械扩张下适应的离子通道的新激活机制。肠道感知机械刺激的能力对于决定它对食物摄入的反应至关重要。通过离子通道的机械感觉可以启动和控制肠道功能。
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来源期刊
CiteScore
4.00
自引率
4.80%
发文量
90
审稿时长
3-8 weeks
期刊介绍: Published since 1929, the Canadian Journal of Physiology and Pharmacology is a monthly journal that reports current research in all aspects of physiology, nutrition, pharmacology, and toxicology, contributed by recognized experts and scientists. It publishes symposium reviews and award lectures and occasionally dedicates entire issues or portions of issues to subjects of special interest to its international readership. The journal periodically publishes a “Made In Canada” special section that features invited review articles from internationally recognized scientists who have received some of their training in Canada.
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