Activity flow under the manipulation of cognitive load and training

认知 认知负荷 工作记忆 计算机科学 任务(项目管理) 心理学 信息处理 认知心理学 神经科学 管理 经济
作者
Wanyun Zhao,Kaiqiang Su,Hengcheng Zhu,Marcus Kaiser,Mingxia Fan,Yong Zou,Ting Li,Dazhi Yin
出处
期刊:NeuroImage [Elsevier BV]
卷期号:297: 120761-120761
标识
DOI:10.1016/j.neuroimage.2024.120761
摘要

Flexible cognitive functions, such as working memory (WM), usually require a balance between localized and distributed information processing. However, it is challenging to uncover how local and distributed processing specifically contributes to task-induced activity in a region. Although the recently proposed activity flow mapping approach revealed the relative contribution of distributed processing, few studies have explored the adaptive and plastic changes that underlie cognitive manipulation. In this study, we recruited 51 healthy volunteers (31 females) and investigated how the activity flow and brain activation of the frontoparietal systems was modulated by WM load and training. While the activation of both executive control network (ECN) and dorsal attention network (DAN) increased linearly with memory load at baseline, the relative contribution of distributed processing showed a linear response only in the DAN, which was prominently attributed to within-network activity flow. Importantly, adaptive training selectively induced an increase in the relative contribution of distributed processing in the ECN and also a linear response to memory load, which were predominantly due to between-network activity flow. Furthermore, we demonstrated a causal effect of activity flow prediction through training manipulation on connectivity and activity. In contrast with classic brain activation estimation, our findings suggest that the relative contribution of distributed processing revealed by activity flow prediction provides unique insights into neural processing of frontoparietal systems under the manipulation of cognitive load and training. This study offers a new methodological framework for exploring information integration versus segregation underlying cognitive processing.
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