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空腹状态下的非侵入性迷走神经刺激可降低心率变异性。

Non-invasive vagus nerve stimulation in a hungry state decreases heart rate variability.

机构信息

Health Sciences Institute, Mersin University, Mersin, Turkey.

Mersin University, Faculty of Medicine, Mersin, Turkey.

出版信息

Physiol Behav. 2023 Jan 1;258:114016. doi: 10.1016/j.physbeh.2022.114016. Epub 2022 Nov 2.

Abstract

Vagus nerve signals from the gut to brain carry information about nutrients and drive food reward. Such signals are disrupted by consuming large amounts of high-calorie foods, necessitating greater food intake to elicit a similar neural response. Non-invasive vagus nerve stimulation (nVNS) via a branch innervating the ear is a candidate treatment for obesity in humans. There is disagreement on the optimal location of nVNS in the ear for experimental and clinical studies. There are also no studies comparing nVNS in hungry and post-prandial states. We aimed to compare ear position(s) for nVNS and explore the effects of nVNS during hungry and post-prandial states on proxies for autonomic outflow (heart-rate variability) and efferent metabolism (gastric wave frequency and resting energy expenditure). In a within-subject design, 14 participants (10 women, on average 29.4 +/- 6.7 years old) received nVNS in four different locations (cymba conchae, tragus, earlobe, or tragus AND cymba conchae) on separate days. In each session, participants were asked to consume a palatable chocolate flavored milk. With electrography on the abdomen and indirect calorimetry in a canopy, we measured electro-cardiogram, electro-gastrogram and resting energy expenditure for 15 min before and at least 35 min after consumption of the palatable drink. We also collected ratings of the palatable drink and internal and other states. Pre-drink consumption (in a hungry state) we observed no differences in the effect of location of acute nVNS on resting energy expenditure and gastric wave measures. However, nVNS in cymba conchae decreases heart-rate variability (relative to sham) and ratings of how much participants want to consume the drink (relative to tragus AND cymba conchae and a trend relative to sham). After drink consumption and with continued nVNS, gastric wave frequency is unchanged, and resting energy expenditure increases regardless of stimulation location. Heart-rate variability decreases in all locations, except cymba conchae. We also observe a trend for an increase in gastric wave amplitude in late post-drink consumption time-points in cymba conchae. We observe no support for the combined stimulation of tragus AND cymba conchae being more effective than either of the individual locations. These results suggest that nVNS in the cymba conchae in a hungry state has a similar acute effect on vagal tone as food consumption: to decrease heart rate variability. This effect then negates the usual postprandial effects of a decrease in heart rate variability as seen in the other nVNS locations. These preliminary observations suggest that nVNS in cymba conchae may act primarily on vagal afferent autonomic (and only modestly on metabolic output) in a similar way as food consumption does.

摘要

肠道向大脑发出的迷走神经信号携带有关营养物质的信息,并驱动食物奖励。这种信号会被大量摄入高热量食物破坏,从而需要更大的食物摄入量来引起类似的神经反应。通过分支神经刺激耳朵的非侵入性迷走神经刺激(nVNS)是治疗人类肥胖的一种候选方法。对于实验和临床研究,关于耳朵中 nVNS 的最佳位置存在分歧。也没有研究比较饥饿和餐后状态下的 nVNS。我们的目的是比较 nVNS 的耳位,并探讨饥饿和餐后状态下 nVNS 对自主流出(心率变异性)和传出代谢(胃波频率和静息能量消耗)的替代指标的影响。在一项单因素设计中,14 名参与者(10 名女性,平均年龄 29.4 +/- 6.7 岁)在不同的日子里分别在四个不同的位置(鼓室隐窝、耳屏、耳垂或耳屏和鼓室隐窝)接受 nVNS。在每个会话中,参与者被要求食用美味的巧克力味牛奶。使用腹部电图和天篷下的间接测热法,我们在饮用美味饮料前和饮用后至少 35 分钟测量心电图、胃电图和静息能量消耗。我们还收集了美味饮料以及内部和其他状态的评分。在饮用前(饥饿状态),我们观察到急性 nVNS 位置对静息能量消耗和胃波测量的影响没有差异。然而,在鼓室隐窝中的 nVNS 会降低心率变异性(相对于假刺激)和参与者想要饮用饮料的程度评分(相对于耳屏和鼓室隐窝以及相对于假刺激的趋势)。在饮用后并继续 nVNS 时,胃波频率保持不变,静息能量消耗增加,而不管刺激位置如何。除了鼓室隐窝外,所有部位的心率变异性都降低了。我们还观察到在饮用后后期时间点,鼓室隐窝中的胃波幅度呈增加趋势。我们没有发现耳屏和鼓室隐窝联合刺激比任何单个部位更有效的支持。这些结果表明,在饥饿状态下,鼓室隐窝中的 nVNS 对迷走神经张力有类似的急性影响,就像食物摄入一样:降低心率变异性。这种影响随后否定了在其他 nVNS 位置看到的通常的餐后心率变异性降低的影响。这些初步观察结果表明,鼓室隐窝中的 nVNS 可能以与食物摄入相似的方式主要作用于迷走神经传入自主神经(并且对代谢输出的影响不大)。

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