高强度运动后中枢神经系统中与μ-阿片受体和多巴胺受体分布相关的低频波动的分数振幅。

Frontiers in neuroimaging Pub Date : 2024-02-22 eCollection Date: 2024-01-01 DOI:10.3389/fnimg.2024.1332384
Henning Boecker, Marcel Daamen, Angelika Maurer, Luisa Bodensohn, Judith Werkhausen, Marvin Lohaus, Christian Manunzio, Ursula Manunzio, Alexander Radbruch, Ulrike Attenberger, Juergen Dukart, Neeraj Upadhyay
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引用次数: 0

摘要

导言多巴胺能、阿片类和内源性大麻素神经递质被认为在急性运动的神经生物学中发挥着重要作用,尤其是在介导积极情绪反应和奖赏过程中。最近的证据表明,静息态功能磁共振成像(rs-fMRI)中低频波动分数振幅(zfALFF)的变化可能反映了特定神经递质系统的变化,并通过空间相关性分析进行了检验。方法:在此,我们对 20 名年轻健康的训练有素的运动员在不同运动强度下的这种关系进行了研究,他们分别在三天内进行了低强度(LIIE)、高强度(HIIE)间歇运动和对照组运动。在三种实验条件之前和之后,分别采集了积极与消极情绪表(PANAS)得分和 rs-fMRI。我们使用重复测量方差分析法分析了各自的 zfALFF 变化。我们研究了训练前后zfALFF的变化与所有体素的神经递质图谱的空间对应关系,此外,我们还根据假设,研究了与 "奖赏 "和 "情绪 "相关的特定大脑网络中与运动神经生物学(多巴胺能、阿片和内大麻素)有关联的神经递质图谱:在 LIIE 和 HIIE 后观察到 PANAS 积极情感升高,而在对照组条件下则没有。与对照组相比,HIIE导致楔前区、颞枕区、扣带回中区和额叶区、丘脑和小脑的zfALFF不同程度地减少,而下丘脑、垂体和uctal灰质周围的zfALFF不同程度地增加。HIIE期间zfALFF的空间改变模式与 "奖赏 "网络中的多巴胺能和μ-视网膜能受体分布呈正相关:这些研究结果为运动神经生物学提供了新的见解,支持了奖赏相关神经传递的重要性,至少在高强度体育锻炼期间是如此。
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Fractional amplitude of low-frequency fluctuations associated with μ-opioid and dopamine receptor distributions in the central nervous system after high-intensity exercise bouts.

Introduction: Dopaminergic, opiod and endocannabinoid neurotransmission are thought to play an important role in the neurobiology of acute exercise and, in particular, in mediating positive affective responses and reward processes. Recent evidence indicates that changes in fractional amplitude of low-frequency fluctuations (zfALFF) in resting-state functional MRI (rs-fMRI) may reflect changes in specific neurotransmitter systems as tested by means of spatial correlation analyses.

Methods: Here, we investigated this relationship at different exercise intensities in twenty young healthy trained athletes performing low-intensity (LIIE), high-intensity (HIIE) interval exercises, and a control condition on three separate days. Positive And Negative Affect Schedule (PANAS) scores and rs-fMRI were acquired before and after each of the three experimental conditions. Respective zfALFF changes were analyzed using repeated measures ANOVAs. We examined the spatial correspondence of changes in zfALFF before and after training with the available neurotransmitter maps across all voxels and additionally, hypothesis-driven, for neurotransmitter maps implicated in the neurobiology of exercise (dopaminergic, opiodic and endocannabinoid) in specific brain networks associated with "reward" and "emotion."

Results: Elevated PANAS Positive Affect was observed after LIIE and HIIE but not after the control condition. HIIE compared to the control condition resulted in differential zfALFF decreases in precuneus, temporo-occipital, midcingulate and frontal regions, thalamus, and cerebellum, whereas differential zfALFF increases were identified in hypothalamus, pituitary, and periaqueductal gray. The spatial alteration patterns in zfALFF during HIIE were positively associated with dopaminergic and μ-opioidergic receptor distributions within the 'reward' network.

Discussion: These findings provide new insight into the neurobiology of exercise supporting the importance of reward-related neurotransmission at least during high-intensity physical activity.

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