Theta synchronization coordinates ventral temporal and medial temporal coding of human face familiarity

Recognizing familiar faces is a fundamental social function that depends on interactions between perceptual and memory systems, yet the underlying neural mechanisms remain poorly understood. Here, we combine single-neuron recordings, intracranial electroencephalography (iEEG), and multi-scale connectivity analyses in the human ventral temporal cortex (VTC) and medial temporal lobe (MTL) to investigate the neural dynamics underlying face familiarity. Theta-frequency phase locking of MTL neurons is associated with face familiarity and familiarization, complementing firing-rate signals. The VTC represents visual features through an axis-based code that disproportionately contributes to familiarity representations. Familiarity is further associated with enhanced theta synchronization between the VTC and MTL, particularly between VTC visual-feature-coding and MTL familiarity-coding channels. Enhanced theta-frequency spike-iEEG coherence for familiar faces suggests that MTL phase locking is coordinated with large-scale VTC activity. Together, these findings identify theta synchronization as a key mechanism coordinating the neural dynamics underlying face familiarity processing in humans.

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Publication Details

Journal
Cell Reports
Published
2026-09-17
DOI
https://doi.org/10.1016/j.celrep.2026.118014
Primary Topic
Face Recognition and Perception
Type
article
Field-Weighted Citation Impact
0.00

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article

Theta synchronization coordinates ventral temporal and medial temporal coding of human face familiarity

Peter Brunner, Hohyun Cho, Shuo Wang, Runnan Cao et al.
Cell Reports
Face Recognition and Perception
article

Theta synchronization coordinates ventral temporal and medial temporal coding of human face familiarity

Peter Brunner, Hohyun Cho, Shuo Wang, Runnan Cao, Ye Li, Jasmine Thum, Jon T. Willie, Yue Wang, Jie Zhang
article en

Abstract

Recognizing familiar faces is a fundamental social function that depends on interactions between perceptual and memory systems, yet the underlying neural mechanisms remain poorly understood. Here, we combine single-neuron recordings, intracranial electroencephalography (iEEG), and multi-scale connectivity analyses in the human ventral temporal cortex (VTC) and medial temporal lobe (MTL) to investigate the neural dynamics underlying face familiarity. Theta-frequency phase locking of MTL neurons is associated with face familiarity and familiarization, complementing firing-rate signals. The VTC represents visual features through an axis-based code that disproportionately contributes to familiarity representations. Familiarity is further associated with enhanced theta synchronization between the VTC and MTL, particularly between VTC visual-feature-coding and MTL familiarity-coding channels. Enhanced theta-frequency spike-iEEG coherence for familiar faces suggests that MTL phase locking is coordinated with large-scale VTC activity. Together, these findings identify theta synchronization as a key mechanism coordinating the neural dynamics underlying face familiarity processing in humans.

Cell ReportsVol. 45(10)
Washington University in St. Louis (US), University of Alabama at Birmingham (US), The University of Texas at Austin (US)
National Science Foundation, Brain and Behavior Research Foundation, National Institutes of Health, McDonnell Center for Systems Neuroscience, Air Force Office of Scientific Research
Gender equality
Openalex Percentile: Top 10%
Face Recognition and Perception
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