PT - JOURNAL ARTICLE AU - Mateusz Woźniak AU - Timo Torsten Schmidt AU - Yuan-hao Wu AU - Felix Blankenburg AU - Jakob Hohwy TI - Differences in working memory coding of biological motion attributed to oneself and others AID - 10.1101/2021.08.16.456121 DP - 2021 Jan 01 TA - bioRxiv PG - 2021.08.16.456121 4099 - http://biorxiv.org/content/early/2021/08/17/2021.08.16.456121.short 4100 - http://biorxiv.org/content/early/2021/08/17/2021.08.16.456121.full AB - The question how the brain distinguishes between information about oneself and the rest of the world is of fundamental interest to both philosophy and neuroscience. This question can be approached empirically by investigating how associating stimuli with oneself leads to differences in neurocognitive processing. However, little is known about the brain network involved in forming such self-associations for, specifically, bodily stimuli. In this fMRI study, we sought to distinguish the neural substrates of representing a full-body movement as one’s movement and as someone else’s movement. Participants performed a delayed match-to-sample working memory task where a retained full-body movement (displayed using point-light walkers) was arbitrarily labelled as one’s own movement or as performed by someone else. By using arbitrary associations we aimed to address a limitation of previous studies, namely that our own movements are more familiar to us than movements of other people. A searchlight multivariate decoding analysis was used to test where information about types of movement and about self-association was coded. Movement specific activation patterns was found in a network of regions also involved in perceptual processing of movement stimuli, however not in early sensory regions. Information about whether a memorized movement was associated with the self or with another person was found to be coded by activity in the left middle frontal gyrus (MFG), left inferior frontal gyrus (IFG), bilateral supplementary motor area, and (at reduced threshold) in the left temporoparietal junction (TPJ). These areas are frequently reported as involved in action understanding (IFG, MFG) and domain-general self/other distinction (TPJ). Finally, in univariate analysis we found that selecting a self-associated movement for retention was related to increased activity in the ventral medial prefrontal cortex.Competing Interest StatementThe authors have declared no competing interest.