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Pruvost-Robieux, E.

Publications and source records attributed to Pruvost-Robieux, E..

3 recordsLinked to original sources

Human primary auditory cortex and insula encode perceptual decisions, not stimulus features

The traditional view of perceptual decision-making assumes a largely feedforward cortical hierarchy, in which sensory regions encode stimulus features that are progressively integrated with top-down signals in higher order associative areas to guide decisions. However, recent work has cast doubt on whether stimulus-and decision-related signals actually follow such a predicted spatiotemporal organization, especially in naturalistic situations where sensory cues are subtle and decisions more strongly driven by internal strategies. Leveraging the unique spatiotemporal precision of human intracerebral recordings, we map here how stimulus and decision variables are represented along the auditory cortical hierarchy as patients engage in a social voice decision task with realistic, low-salience cues. Contrary to feedforward predictions, we found no clear spatial or temporal gradient separating stimulus- and decision-related effects; rather, decision effects emerged early during stimulus exposure and, strikingly, flowed back all the way to the most primary regions of the superior temporal gyrus. In addition, the direction of these early and primary decision signals closely reflected the variability in patients specific decision criteria. Taken together, these results strongly challenge the traditional feedforward model, supporting a view in which the activity of early auditory regions does not reflect subtle stimulus categories but is instead dynamically configured by task-dependent priors and response strategies. Significant StatementThis work studies an ecological social-cognitive decision task based on subtle but natural vocal cues. Contrary to expectations, it shows that early and primary auditory activity in human intracerebral recordings does not reflect stimulus categories but instead patients decisions and decision criteria. These results are significant because they provide rare human intracerebral evidence that sensory regions are not static repositories of stimulus representations but rather dynamic, task-dependent filters that are configured by priors and decision criteria.

neuroscience↗

The implicit influence of pitch contours and emotional timbre on P300 components in an own-name oddball paradigm

ObjectivePrevious evidence has suggested that paralinguistic features of speech stimuli may influence the characteristics of P300 components when used in clinical evaluation of consciousness. However, it remains unknown what exact acoustic components of speech are influential in such tasks, and whether they are capable of interacting with attentional deployment (as indexed by P300) in an implicit manner. MethodTo study this question, we adapted here an auditory oddball-paradigm used in clinical practice (the "own-name" paradigm), and tested whether systematic transformations of pitch contours (i.e. rising or falling intonation) and emotional timbre (i.e. smiling or rough voices) on the participants names influenced P300 responses in 24 healthy participants. ResultsP300 responses to rising pitch contours were smaller than to falling pitch contours, possibly reflecting an interference of the rising contours with participant attention in the deviant-counting task. No such difference was observed with emotional timbre variations. Conclusion and SignificanceThese results suggest that the cognitive resources involved in pitch contour processing overlap more strongly than timbre with the resources required to count own-name deviants, and that rising pitch contours should be tested prospectively as a way to increase the saliency of consciousness evaluation in unconscious patients.

neuroscience↗

Cortical responses to looming sources are explained away by the auditory periphery

A wealth of behavioral evidence indicate that sounds with increasing intensity (i.e. appear to be looming towards the listener) are processed with increased attentional and physiological resources compared to receding sounds. However, the neurophysiological mechanism responsible for such cognitive amplification remains elusive. Here, we show that the large differences seen between cortical responses to looming and receding sounds are in fact almost entirely explained away by nonlinear encoding at the level of the auditory periphery. We collected EEG mismatch negativity (MMN) data in response to deviant stimuli with both dynamic (looming and receding) and constant level (flat) differences to the standard in the same participants. We then combined a computational model of the auditory periphery with generative EEG methods (temporal response functions, TRFs) to model the single-participant MMN responses to flat deviants, and used them to predict the effect of the same mechanism on looming and receding stimuli. The flat model explained a remarkable 45% variance of the looming response, and 33% of the receding response. This provide striking evidence that MMN responses to looming and receding sounds result from the same cortical mechanism that generate MMN to constant-level deviants: all such differences are the sole consequence of their particular physical morphology getting amplified and integrated by peripheral auditory mechanisms. Thus, not all effects seen cortically proceed from top-down modulations by high-level decision variables, but can rather be performed early and efficiently by feed-forward peripheral mechanisms that evolved precisely to sparing subsequent networks with the necessity to implement such mechanisms.

neuroscience↗