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May 9, 20260 citationsOpen Access

Adaptive shifts in amygdala–hippocampal theta coupling govern aversive learning and extinction

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SSSaurabh SonkusareUniversity of CambridgeQDQiong DingShanghai Jiao Tong UniversityCWChristopher WeirichFudan University

Key Points

  • This research aims to understand the dynamic interactions between the amygdala and hippocampus during aversive learning and extinction.
  • Intracranial EEG recordings from the amygdala and hippocampus during a two-day aversive learning and extinction task
  • Analysis of frequency-specific power and phase connectivity dynamics
  • Computational modelling to validate connectivity configurations.
  • Increased amygdala theta (3-8 Hz) and gamma (30-45 Hz) power during conditioning; decreased during extinction.
  • Hippocampal alpha and gamma activity shifted to theta and gamma during extinction.
  • Frequency-specific reversals in directional phase connectivity indicated a shift in dominance between amygdala and hippocampus during different learning phases.

Abstract

Adaptive behaviour relies on the flexible encoding and suppression of aversive associations often underpinned by amygdala-hippocampal interactions. Yet the spectral and directional dynamics underlying these interactions in humans remain poorly understood. Using intracranial EEG recordings from the amygdala and the hippocampus acquired during a two-day aversive learning and extinction task, we identified frequency-specific shifts: amygdala theta (3–8 Hz) and gamma (30–45 Hz) power increased during conditioning and decreased during extinction, while hippocampal alpha and gamma activity gave way to theta and gamma during extinction. Directional phase connectivity, results showed frequency-specific reversals: amygdala-to-hippocampus dominance at 3-5 Hz during conditioning and hippocampus-to-amygdala predominance in extinction, while 6-8 Hz showed the opposite pattern, a reconfiguration validated by computational modelling. These findings uncover distinct theta sub-bands coordinating dynamic, bidirectional communication in the human amygdala–hippocampal circuit, elucidating a neural mechanism for the flexible regulation of emotional memory.

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Cite This Study

Sonkusare et al. (2026) studied this question.

synapsesocial.com/papers/69fecf71b9154b0b828766d5https://doi.org/10.17863/cam.129945
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