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Rau, E. M. B.

Publications and source records attributed to Rau, E. M. B..

2 recordsLinked to original sources

Task-relevant cognitive maps in episodic memory

Adaptive behavior requires stimuli to be processed in a way that meets the requirements of the current task. This is especially relevant for natural concepts that comprise a multitude of representational formats. The medial temporal lobe (MTL) has been proposed to support such flexibility by organizing stimuli within relational representational spaces serving as cognitive maps. However, while various studies investigated the formation of novel cognitive maps based on abstract features, it remains unclear how our vast existing conceptual knowledge is recruited into task-relevant representational spaces and whether these spaces influence the formation of novel episodic memories. Here we show that neural representations of natural concepts in the MTL and neocortex are embedded in low-dimensional representational spaces of task-relevant features that flexibly reorganize when task demands change. Crucially, hippocampal pattern similarity reflects task-relevant, but not task-irrelevant conceptual feature dimensions of the same set of natural concepts, indicating context-dependent reconfiguration of representational spaces. Euclidean distances within and across these spaces predicted subsequent memory confidence for individual items, suggesting a putative metric of task-dependent neural distinctiveness for the formation of memory traces. Finally, we dissociate task- and stimulus-dependent formats in neocortex, demonstrating complementary representations of natural stimuli that differentially contribute to memory formation. Our findings suggest that relational coding of task-relevant features in the MTL may serve as an index of representational distinctiveness that contributes to the formation of novel episodic memories and integrate MTL accounts based on spatial coding and episodic memory.

neuroscience↗

The development of aperiodic neural activity in the human brain

The neurophysiological mechanisms supporting brain maturation are fundamental to attention and memory capacity across the lifespan. Human brain regions develop at different rates, with many regions developing into the third and fourth decades of life. Here, in this preregistered study (https://osf.io/gsru7), we analyzed intracranial EEG (iEEG) recordings from widespread brain regions in a large developmental cohort. Using task-based (i.e., attention to-be-remembered visual stimuli) and task-free (resting-state) data from 101 children and adults (5.93 - 54.00 years, 63 males; n electrodes = 5691), we mapped aperiodic (1/[f]-like) activity, a proxy of neural noise, with steeper slopes indexing less noise and flatter slopes indexing more noise. We reveal that aperiodic slopes flatten with age into young adulthood in both association and sensorimotor cortices, challenging models of early sensorimotor development based on brain structure. In prefrontal cortex (PFC), attentional state modulated age effects, revealing steeper task-based than task-free slopes in adults and the opposite in children, consistent with the development of cognitive control. Age-related differences in task-based slopes also explained age-related gains in memory performance, linking the development of PFC cognitive control to the development of memory. Last, with additional structural imaging measures, we reveal that age-related differences in gray matter volume are similarly associated with aperiodic slopes in association and sensorimotor cortices. Our findings establish developmental trajectories of aperiodic activity in localized brain regions and illuminate the development of PFC control during adolescence in the development of attention and memory.

neuroscience↗