Task-related changes in aperiodic activity are related to visual working memory capacity independent of event-related potentials and alpha oscillations.

Imaging neuroscience (Cambridge, Mass.) Pub Date : 2025-09-19 eCollection Date: 2025-01-01 DOI:10.1162/IMAG.a.150
Sian Virtue-Griffiths, Alex Fornito, Sarah C H Thompson, Mana Biabani, Jeggan Tiego, Tribikram Thapa, Neil W Bailey, Nigel C Rogasch
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Abstract

Research using electroencephalography (EEG) has shown that individual differences in visual working memory capacity are related to slow-wave event-related potentials (ERPs) and suppression of alpha-band oscillatory power during the delay period of memory tasks. However, recent evidence suggests that changes in non-oscillatory (aperiodic) features of the EEG signal are related to working memory performance. We assessed several features of task-related changes in aperiodic activity including its spatial distribution, the effect of memory load, and the relationships between aperiodic activity, memory capacity, slow-wave ERPs, and alpha suppression. Eighty-four healthy individuals performed a continuous recall working memory (WM) task consisting of 2, 4 or 6 coloured squares while EEG was recorded. Aperiodic activity during a baseline and WM delay period was quantified by fitting a model to the background of the EEG power spectra, which returned parameters describing the slope (exponent) and broadband offset of the spectra. The aperiodic exponent increased (i.e., slope steepened) in fronto-central electrodes during the WM delay period, whereas the offset decreased over parieto-occipital electrodes. These task-related changes in aperiodic activity did not differ between memory loads. Larger increases in the aperiodic exponent were associated with higher working memory capacity measured from both the WM task and a separate battery of complex span tasks, a relationship that was independent of slow-wave ERPs and alpha suppression. Our findings suggest that WM task-related changes in aperiodic activity are region specific and reflect an independent neural mechanism that is important for general working memory ability.

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Abstract Image

Abstract Image

非周期活动的任务相关变化与独立于事件相关电位和α振荡的视觉工作记忆容量有关。
脑电图(EEG)研究表明,视觉工作记忆容量的个体差异与记忆任务延迟期的慢波事件相关电位(ERPs)和α波段振荡功率抑制有关。然而,最近的证据表明,脑电图信号的非振荡(非周期)特征的变化与工作记忆表现有关。我们评估了任务相关的非周期活动变化的几个特征,包括其空间分布、记忆负荷的影响以及非周期活动、记忆容量、慢波erp和α抑制之间的关系。在记录脑电图的同时,84名健康人进行了由2、4或6个彩色方块组成的连续回忆工作记忆(WM)任务。在基线和WM延迟期间,通过将模型拟合到脑电功率谱的背景中来量化非周期活动,该模型返回描述谱斜率(指数)和宽带偏移的参数。在WM延迟期间,额-中心电极的非周期指数增加(即斜率变陡),而顶-枕电极的偏移量减少。这些与非周期性活动相关的任务变化在不同的记忆负荷之间没有差异。在WM任务和一组单独的复杂跨度任务中,非周期指数的较大增长与更高的工作记忆容量有关,这种关系与慢波erp和α抑制无关。我们的研究结果表明,WM任务相关的非周期性活动变化是区域特异性的,反映了一种独立的神经机制,对一般工作记忆能力很重要。
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