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Martineau, L.

Publications and source records attributed to Martineau, L..

3 recordsLinked to original sources

Cortico-Hippocampal phase-amplitude coupling is a signature of learned audiovisual associations in humans

Phase-Amplitude Coupling (PAC) has been proposed as an elegant neural mechanism for representing sequential items in memory, coordinating distant brain regions, and parsing complex sensory inputs. Yet, whether PAC carries content-specific, behaviorally meaningful information has not been demonstrated to date. Here, using human intracranial recordings before, during and after an audio-visual associative learning task, we show that PAC is an information-coding mechanism. PAC strength in cortico-hippocampal networks increased linearly during learning and remained significantly stronger post vs. pre-learning. More importantly, PAC comodulograms carried stimulus- and association-specific information: auditory items were decodable in auditory cortex before learning based on PAC features, while learned associations were classified across hippocampo-temporo-frontal networks during and after learning. Post-learning brain decoding confusion matrices closely mirrored behavioral confusion matrices, and PAC patterns were independent of low-level stimulus features. These findings suggest that PAC is an endogenously generated marker that supports perception and associative learning in the human brain. One-sentence summaryWe demonstrate that phase-amplitude coupling (PAC) in cortico-hippocampal networks serves as a specific, endogenously generated, and behaviorally meaningful neurophysiological mechanism for perceiving, learning, and maintaining audio-visual associations.

neuroscience↗

Neural coding of spectrotemporal modulations in the auditory cortex supports speech and music categorization

Auditory processing is typically described as hierarchical, culminating in neural representation of abstract categories. However, it remains unclear whether category-selective responses in auditory cortex require representational mechanisms beyond the coding of acoustic features, or whether the acoustic representations already available in the auditory cortex are sufficient to account for categorization. Here, we test whether cortical coding of spectrotemporal modulation (STM) features is sufficient to support speech-music categorization by combining human intracranial recordings with continuous behavioral judgments of a naturalistic soundtrack in which speech and music occur both separately and simultaneously. We show that temporal and spectral modulation patterns largely characterize speech and music, respectively, and that cortical auditory regions robustly track these features over time, with distinct oscillatory frequency bands preferentially encoding temporal and spectral modulations. Critically, cortical representations of STMs predicted perceptual categorical judgments gathered in an independent sample. Finally, speech- and music-related STM representations showed stronger tracking of category-specific acoustical features in left versus right cortical auditory regions, respectively. These findings indicate that the efficient neural coding of acoustical features provides a sufficient basis for the categorical distinction between speech and music, and that the temporal and spectral components of this representation are implemented through distinct oscillatory mechanisms.

neuroscience↗

Valence-dependent sensory-rhythmic neural entrainment modulates cortico-subcortical dynamics, attention, and memory

Sensory rhythmic stimulation enhances executive functions by entraining oscillations in higher- order cortical networks, but its effects on subcortical structures remain unclear. We propose that stimulus valence is a key feature to enable subcortical entrainment. Using intracranial EEG in epileptic patients, we first show that visual search is supported by cortico-subcortical theta (5Hz) activity. We then show that 5 Hz negative-valence visual stimulation entrains theta oscillations in a task-related network, including the ventral visual stream, hippocampus, and dorsolateral prefrontal cortex. Finally, in a behavioral experiment in healthy individuals, we show that both neutral and negative valence 5 Hz stimulation improved visual search speed, but only negative valence stimulation enhanced target image recognition as assessed through an additional memory task. These findings highlight the role of stimulus valence in modulating subcortical brain activity and behaviors through rhythmic sensory stimulation and pave the way for further applications in clinical intervention.

neuroscience↗