The role of delta phase for temporal predictions investigated with bilateral parietal tACS

IF 7.6 1区 医学 Q1 CLINICAL NEUROLOGY Brain Stimulation Pub Date : 2025-01-01 DOI:10.1016/j.brs.2024.12.1476
Rebecca Burke , Alexander Maÿe , Jonas Misselhorn , Marina Fiene , Felix J. Engelhardt , Till R. Schneider , Andreas K. Engel
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Abstract

Background

Previous research has shown that temporal prediction processes are associated with phase resets of low-frequency delta oscillations in a network of parietal, sensory and frontal areas during non-rhythmic sensory stimulation. Transcranial alternating current stimulation (tACS) modulates perceptually relevant brain oscillations in a frequency and phase-specific manner, allowing the assessment of their functional qualities in certain cognitive functions like temporal prediction.

Objective

We addressed the relation between oscillatory activity and temporal prediction by using tACS to manipulate brain activity in a sinusoidal manner. This enables the investigation of the relevance of low-frequency oscillations’ phase for temporal prediction.

Methods

Delta tACS was applied over the left and right parietal cortex in two separate unimodal and crossmodal temporal prediction experiments. Participants judged either the visual or the tactile reappearance of a uniformly moving visual stimulus, which shortly disappeared behind an occluder. tACS was applied with six different phase shifts relative to sensory stimulation in both experiments. Additionally, a computational model was developed and analysed to elucidate oscillation-based functional principles for the generation of temporal predictions.

Results

Only in the unimodal experiment, the application of delta tACS resulted in a phase-dependent modulation of temporal prediction performance. By considering the effect of sustained tACS in the computational model, we demonstrate that the entrained dynamics can phase-specifically modulate temporal prediction accuracy.

Conclusion

Our results suggest that delta oscillatory phase contributes to unimodal temporal prediction. Crossmodal prediction may involve a broader brain network or cross-frequency interactions, extending beyond parietal delta phase and the scope of our current stimulation design.
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用双侧顶叶tACS研究delta相对时间预测的作用。
背景:先前的研究表明,在无节奏的感觉刺激下,时间预测过程与顶叶、感觉和额叶区域网络中的低频delta振荡的相位重置有关。经颅交流电刺激(tACS)以特定频率和相位的方式调节感知相关的大脑振荡,从而可以评估其在某些认知功能(如时间预测)中的功能质量。目的:我们通过使用tACS以正弦方式操纵大脑活动来研究振荡活动与时间预测之间的关系。这使得研究低频振荡相位与时间预测的相关性成为可能。方法:在左右顶叶皮层分别应用Delta tACS进行单峰和跨峰时间预测实验。参与者判断一个均匀移动的视觉刺激的视觉或触觉再现,这个视觉刺激很快消失在封堵物后面。在这两个实验中,tACS应用了六种不同的相对于感官刺激的相移。此外,还开发和分析了一个计算模型,以阐明基于振荡的功能原理,用于生成时间预测。结果:只有在单峰实验中,δ tACS的应用导致了时间预测性能的相位依赖调制。通过在计算模型中考虑持续tACS的影响,我们证明了夹带动力学可以相位特异性地调制时间预测精度。结论:我们的研究结果表明,delta振荡相位有助于单峰时间预测。跨模态预测可能涉及更广泛的大脑网络或跨频率相互作用,超出顶叶δ期和我们当前刺激设计的范围。
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来源期刊
Brain Stimulation
Brain Stimulation 医学-临床神经学
CiteScore
13.10
自引率
9.10%
发文量
256
审稿时长
72 days
期刊介绍: Brain Stimulation publishes on the entire field of brain stimulation, including noninvasive and invasive techniques and technologies that alter brain function through the use of electrical, magnetic, radiowave, or focally targeted pharmacologic stimulation. Brain Stimulation aims to be the premier journal for publication of original research in the field of neuromodulation. The journal includes: a) Original articles; b) Short Communications; c) Invited and original reviews; d) Technology and methodological perspectives (reviews of new devices, description of new methods, etc.); and e) Letters to the Editor. Special issues of the journal will be considered based on scientific merit.
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