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Christophel, T.

Publications and source records attributed to Christophel, T..

2 recordsLinked to original sources

Distinct functional roles of distributed cortical representations for working memory storage

While distributed cortical areas represent working memory contents, their necessity for memory maintenance has been questioned. We examined the differential effects of maintaining multiple items on the neural information across cortical regions. In each trial of the fMRI experiment, participants (n=81) had to memorize two items, each either an orientation or a pure pitch, for 13.8s and continuously recalled the target after the delay. We kept the overall working memory load constant, but varied the sensory modality of each item to vary the effective visual load. We show that increasing visual load decreased behavioural recall performance for orientations and continuous orientation-specific decodable information in visual cortex but less so infrontoparietal areas. Simulations show that this drop in decodable information is best interpreted as a drop in mnemonic information represented by patterns of visual cortex activity. Our results provide evidence for shared labour of visual cortices, where maintaining two versus one orientation leads to a loss in representational fidelity, and anterior cortices, where multiple items could be represented in a more robust but less precise format.

neuroscience↗

Working memory and imagery in early visual cortex

It has been suggested that visual images are memorized across brief periods of time by vividly imagining them as if they still were there. In line with this, the contents of both working memory and visual imagery are known to be encoded already in early visual cortex. If these signals in early visual areas were indeed to reflect a combined imagery and memory code, one would predict them to be weaker for individuals with reduced visual imagery vividness. Here, we systematically investigated this question in two groups of participants. Strong and weak imagers were asked to remember images across brief delay periods. We were able to reliably reconstruct the memorized stimuli from early visual cortex during the delay. Importantly, in contrast to the prediction, the quality of reconstruction was equally accurate for both strong and weak imagers. The decodable information also closely reflected behavioral precision in both groups, suggesting it could contribute to behavioral performance, even in the extreme case of completely aphantasic individuals. Our data thus suggest that working memory signals in early visual cortex can be present even in the (near) absence of phenomenal imagery.

neuroscience↗