Top-down modulation of visual action perception: distinct task effects in the action observation network

buir.contributor.authorEroğlu, Aslı
buir.contributor.authorÜrgen, Burcu Ayşen
buir.contributor.orcidEroğlu, Aslı|0000-0003-1415-9584
buir.contributor.orcidÜrgen, Burcu Ayşen|0000-0001-9664-0309
dc.citation.epage175-20
dc.citation.issueNumber9
dc.citation.spage175-1
dc.citation.volumeNumber230
dc.contributor.authorEroğlu, Aslı
dc.contributor.authorÜrgen, Burcu Ayşen
dc.date.accessioned2026-04-14T17:33:03Z
dc.date.available2026-04-14T17:33:03Z
dc.date.issued2025-11-10
dc.departmentAysel Sabuncu Brain Research Center (BAM)
dc.departmentDepartment of Psychology
dc.departmentNational Magnetic Resonance Research Center (UMRAM)
dc.description.abstractPerceiving others’ actions is essential for survival and social interaction. Cognitive neuroscience research has identified a network of brain regions crucial to visual action perception, known as the Action Observation Network (AON), comprising the posterior superior temporal cortex (pSTS), posterior parietal cortex, and premotor cortex. Recent research highlights the importance of integrating top-down processes, such as attention, to gain a deeper understanding of action perception. This study investigates how attention modulates the AON during human action perception. We conducted a two-session fMRI experiment with 27 participants. They viewed eight videos of pushing actions, varying in actor (female vs. male), effector (hand vs. foot), and target (human vs. object). In the first session, participants focused on specific features of the videos (actor, effector, or target). In the second, they passively viewed the videos. From the passive viewing session data, we defined regions of interest (ROIs) in the pSTS, parietal, and premotor cortices for each hemisphere. We then performed model-based representational similarity analysis (RSA) and decoding analysis. RSA results showed that only the task model, among all tested models, exhibited a significant correlation with neural representational similarity matrices (RDMs) across all ROIs, indicating a specific alignment between AON nodes and the ongoing task. Decoding analysis further showed that different task types uniquely affected each AON node, indicating feature- and region-specific interactions. These findings underscore that top-down attentional processes significantly alter neural representations within the AON, highlighting the dynamic interplay between attention and action perception in the brain.
dc.identifier.doi10.1007/s00429-025-03042-z
dc.identifier.eissn1863-2661
dc.identifier.issn1863-2653
dc.identifier.urihttps://hdl.handle.net/11693/119029
dc.language.isoEnglish
dc.publisherSpringer
dc.relation.isversionofhttps://dx.doi.org/10.1007/s00429-025-03042-z
dc.rightsCC BY 4.0 DEED (Attribution 4.0 International)
dc.rights.urihttps://creativecommons.org/licenses/by/4.0/
dc.source.titleBrain Structure and Function
dc.subjectAction observation
dc.subjectAttention
dc.subjectTop-down modulation
dc.subjectFMRI
dc.subjectRepresentational similarity analysis
dc.subjectDecoding analysis
dc.titleTop-down modulation of visual action perception: distinct task effects in the action observation network
dc.typeArticle

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