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Biology subjects

Dabranau, A.

Publications and source records attributed to Dabranau, A..

2 recordsLinked to original sources

Personal network features are embodied in real-time social interaction dynamics

People navigate dozens of social interactions daily. Through these, they construct and maintain diverse social networks. While personal dispositions drive how people interact and connect others, the resulting networks feed back into daily social experiences by creating interaction opportunities and modulating cognitive processes. Here, we show that peoples moment-to-moment interaction behaviors are informative of the structure of their personal social network, even if the interaction occurs between strangers. We paired 104 strangers to perform an interactive motor task and investigated whether emergent leader-follower roles and spontaneous movement synchronization reflected similarities or differences in their personal networks. Participants with tighter networks (smaller, denser, more constrained, and with fewer communities) relative to the interaction partner adapted their movements to the partner more. Using multivariate temporal response functions (mTRF) to measure neural encoding of self and others movements, we found that, conversely, participants with less tight networks exhibited higher neural encoding of their partners movements. This suggests that the network effect on behavioral adaptation was unlikely to be driven by heightened monitoring of the partner. Higher spontaneous movement synchronization was associated with higher personality agreeableness and personality similarity between interacting partners. Our results demonstrate that signatures of personal social environment manifest dynamically in real-time behaviors and that these effects are independent of personality effects. Thus, social networks set an additional context for interpersonal interaction even for partners without a prior relationship.

neuroscience↗

Friendship modulates physical effort and neural dynamics during group coordination in shared social networks

Human social interactions are embedded within social networks, yet how existing interpersonal relationships influence the behavioural and neural dynamics of collective action remains unclear. We combined social network mapping with three-person EEG-hyperscanning to investigate how friendship asymmetry within shared social networks modulates physical effort allocation during real-time coordination. Triads consisting of two close friends and one non-friend performed a novel joint force task. Non-friends consistently produced greater and more vigorous force relative to friends, particularly those embedded in smaller classroom social networks. At the neural level, non-friends also showed stronger alpha- and beta-band event-related desynchronization, inter-subject correlation, and group phase synchrony, indicating greater engagement of action-related and attentional processes. These findings suggest that non-friends invest more physical effort and attention when interacting in socially asymmetric group settings, demonstrating how real-world relational context within social networks is dynamically embodied in the neural and behavioural mechanisms supporting human group coordination.

neuroscience↗