Neural correlates of consciousness in an auditory no-report fMRI study.
Torge Dellert, Henning Balster, Insa Schlossmacher, Maximilian Bruchmann, Robert Moeck, Thomas Straube
Current biology : CB December 1, 2025 DOI: 10.1016/j.cub.2025.10.026 via PubMed
Summary
AI-generated from the abstractConscious auditory perception relies more on sensory brain regions than on widespread fronto-parietal networks. In an fMRI study using a no-report inattentional deafness paradigm, 63 participants performed an auditory distractor task while task-irrelevant sounds were played. Those aware of the sounds showed strong activation in secondary auditory areas (superior temporal gyrus, sulcus, and middle temporal gyrus) and nodes of attention networks. Unaware processing activated only primary auditory regions. Comparing aware and unaware participants, auditory awareness was associated with extensive sensory activation, while fronto-parietal activation was weaker and only detected in Bayesian analysis. This suggests stimulus-specific sensory activity dominates conscious auditory perception.
Study at a glance
| Characteristics | Observational cohort Peer reviewed |
|---|---|
| Sample size | 63 |
| Population | Healthy human participants |
| Keywords | Bold Audition Auditory perception Awareness Consciousness |
| Key finding | Conscious auditory perception is associated with strong sensory activation in secondary auditory regions rather than widespread fronto-parietal activity. |
Abstract
In the search for neural correlates of consciousness (NCCs), prominent theories disagree about the role of sensory versus widespread fronto-parietal brain activity. Research on auditory awareness has been widely neglected, and disentangling NCCs from correlates of task-related post-perceptual processes (e.g., report) is an ongoing challenge. In the present study, we addressed these issues using functional magnetic resonance imaging (fMRI) during a no-report inattentional deafness paradigm. Sixty-three healthy human participants performed an auditory distractor task while supra-threshold but task-irrelevant critical sounds were presented in the background. Whereas one group was aware of them, another group remained unaware. Whole-brain responses were analyzed using frequentist and Bayesian inference. During unaware processing, significant activations were restricted to auditory regions in the superior temporal gyrus (STG) and Heschl's gyrus. Aware processing additionally significantly recruited the superior temporal sulcus (STS), the middle temporal gyrus (MTG), and nodes of the ventral and dorsal attention networks. To isolate auditory NCCs, brain responses to the physically identical, task-irrelevant critical sounds were compared between aware and unaware participants, thereby controlling for non-conscious processing while avoiding task-related processing. Auditory awareness was associated with strong, extensive, significant activation in secondary auditory regions (STG, STS, MTG). In comparison, activation in the insula, the inferior, middle, and superior frontal gyrus, as well as the precuneus, was weaker, more spatially confined, and only detected in the Bayesian analysis. These findings suggest a dominant role of stimulus-specific sensory compared to fronto-parietal brain activity in conscious auditory perception.