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Updated: Sep 16, 2025

A Behavioral Assay for Investigating the Role of Spatial Memory During Instinctive Defense in Mice
Published on: July 21, 2018
Functional analysis of periaqueductal gray neurons projecting to the medulla in active and passive defensive
Yuki Honshuku1, Yuki Yamaguchi2, Koki Kawazoe2
1Department of Chemico-Pharmacological Sciences, Graduate School of Pharmaceutical Sciences, Kumamoto University, Kumamoto, Japan; Department of Pharmacology, Graduate School of Pharmaceutical Sciences, Hokkaido University, Sapporo, Japan.
Abstract:
Fear responses and defensive behaviors are essential for survival. Fear responses are mediated by neural circuits that detect threatening stimuli and classify them as "unpleasant" or "aversive". These circuits coordinate the selection of defensive behaviors, such as freezing or flight, depending on the perceived imminence of the threat. Activation of excitatory neurons in the lateral/ventrolateral periaqueductal gray (l/vlPAG) induces diverse fear responses, depending on the subregions, projection targets, and stimulation intensity. Some l/vlPAG neurons project to the magnocellular nucleus of the medulla (Mc). However, it remains unclear which of the diverse behaviors arising from different intensities of l/vlPAG stimulation are mediated via the l/vlPAG-Mc pathway. Additionally, the role of the l/vlPAG-Mc pathway activation in driving negative or positive valence-related behavior is unknown. To address these questions, we used optogenetics to stimulate Mc-projecting l/vlPAG neurons at two levels of light intensity and analyzed the resulting behavioral changes. Strong stimulation of Mc-projecting l/vlPAG neurons induced flight behavior, whereas weak stimulation elicited a freezing response. Real-time and conditioned place aversion tests indicated that strong stimulation was aversive. These findings suggest that strong stimulation of Mc-projecting l/vlPAG neurons induces active defensive behavior and behavioral aversion, while weak stimulation induces passive defensive behavior.
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