Goal-directed modulation of the default network supports interactions between selective attention, working memory, and prior knowledge
成果类型:
Article
署名作者:
Diveica, Veronica; Setton, Roni; Turner, Gary R.; Spreng, R. Nathan
署名单位:
McGill University; Harvard University; York University - Canada; McGill University; McGill University; McGill University
刊物名称:
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA
ISSN/ISSBN:
0027-8424; 1091-6490
DOI:
10.1073/pnas.2605179123
发表日期:
2026-07-21
页码:
e2605179123
关键词:
attention
cognitive control
working memory
semantic knowledge
multiecho fMRI
TOP-DOWN MODULATION
FRONTOPARIETAL CONTROL NETWORK
AUTOBIOGRAPHICAL MEMORY
prefrontal cortex
neural mechanisms
DORSAL ATTENTION
MODE NETWORK
visual-attention
episodic memory
FAMOUS FACES
摘要:
Memory is central to flexible, goal-directed behavior. Prior knowledge shapes our current decisions and future plans and guides our attention to selectively prioritize relevant information in our complex, noisy world. Yet, most research on the neural basis of selective attention has focused on novel stimuli and has defined goal relevance based on perceptual features rather than prior knowledge. We investigated how the brain supports selective attention when goal relevance depends on prior knowledge, and compared selection of novel (memory-independent) versus familiar (memory-enhanced) stimuli. Using multiecho fMRI, we recorded brain activity during a selective working memory task involving pictures of famous (familiar) and anonymous (novel) people and places. We manipulated the relevance of fame to task performance: In fame relevant task blocks, participants selectively attended to famous while ignoring anonymous stimuli; in fame irrelevant blocks, they attended to anonymous while ignoring famous stimuli. Compared to a nonselective, categorization task, the selective working memory task elicited sustained coactivation of frontoparietal control and dorsal attention networks. Task-relevant contrasted with task-irrelevant stimuli elicited transient coactivation of frontoparietal control and default network regions, irrespective of stimulus fame. Within the DN, this effect was driven by both enhanced activation for task-relevant stimuli and suppression for task-irrelevant stimuli, confirming attention-driven neuromodulation. Further, selective working memory coactivated these high-order, heteromodal brain networks while lowering activity in visual regions. Our findings elucidate the neural underpinnings of prior knowledge-guided selection of perceptual inputs for working memory, suggesting differences from those previously reported for perception-guided selection.
来源URL: