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Bachi, K.

Publications and source records attributed to Bachi, K..

2 recordsLinked to original sources

Neural Trajectories of Social Relationships on a Map-like Manifold

In a series of conceptually related episodes, meaning arises from the link between these events rather than from each event individually. How does the brain keep track of conceptually related sequences of events (i.e., conceptual trajectories)? In a particular kind of conceptual trajectory--a social relationship--meaning arises from a specific sequence of interactions. To test whether such abstract sequences are neurally tracked, we had participants complete a naturalistic narrative-based social interaction game, during functional magnetic resonance imaging. We modeled the simulated relationships as trajectories through an abstract affiliation and power space. Using two independent samples (n = 50), we found evidence of both the underlying social dimensions of affiliation and power and the evolving social relationships themselves as being tracked by the hippocampus. These results suggest that our evolving relationships with others, despite being composed of isolated events that occur independently across time and space (i.e., spatially and temporally non-consecutive events), but are nevertheless related conceptually, are represented in trajectory-like neural patterns in the human hippocampus.

neuroscience↗

Hippocampal Place-like Signal in Latent Social Space

During navigation, the hippocampus represents physical places like coordinates on a map; similar location-like signals have been seen in sensory and concept spaces. It is unclear just how general this hippocampal place code is, however: does it map places in wholly non-perceivable spaces, without locations being instructed or reinforced and during navigation-like behavior? To search for such a signal, we imaged participants brains while they played a naturalistic, narrativebased social interaction game, and modeled their relationships as a kind of navigation through social space. Two independent samples showed hippocampal place-like signals in both region-based and whole-brain representational similarity analyses, as well as decoding and average pattern similarity analyses; the effects were not explained by other measures of the behavior or task information. These results are the first demonstration of complete domain generality in hippocampal place representation. One-Sentence Summaryhippocampal place-like signal in non-perceivable and unreinforced space during naturalistic navigational behavior. Significance statementThe hippocampus is a brain structure known to encode maps of physical spaces; this study shows that it also maps fully abstract, latent and uninstructed spaces. People played a naturalistic social interaction game while their brains were scanned. Hippocampal brain activity correlated with the fictional characters locations in an abstract social space framed by axes of affiliation and power, despite the participants never being exposed to a perceivable spatial representation. This mapping was present across multiple analyses and two samples, demonstrating that the brain system responsible for spatial mapping maps our social interactions too.

neuroscience↗