Orexinergic Input to the Supramammillary Region Links Threat Salience to Approach Behavior and Dopamine Release
Arima, Y.; Gibbons, J.; Mendoza, J.; Getachew, B.; Johnson, S. T.; Ye, Z.; Ikemoto, S.
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Orexin (hypocretin) neurons (OXN) broadcast arousal-related signals across the forebrain, yet how their inputs shape motivated behavior remains poorly understood. The supramammillary region (SuM), a posterior hypothalamic structure implicated in arousal, active coping and reward-seeking, receives dense orexin innervation. Here, we define how orexinergic terminals in the SuM (OXNSuM) integrate threat salience with approach motivational processes. Using viral tracing and RNAscope, we show that SuM neurons express both orexin receptor subtypes, with type 2 receptors predominating. Fiber photometry recordings from OXNSuM terminals reveal strong activation by footshock and conditioned threat cues, modest responses to salient sensory stimuli, and pronounced suppression during water consumption. Optogenetic stimulation of OXNSuM terminals reinforces instrumental responding, biases real-time place preference, and elicits rapid, stimulation-locked dopamine release in the nucleus accumbens. These findings identify an orexin-to-SuM pathway that is engaged by uncertainty and threat yet promotes approach behavior through coupling to mesolimbic dopamine, revealing a mechanism linking hypothalamic arousal signals to adaptive motivational responses. SIGNIFICANCE STATEMENTThe supramammillary region (SuM) has emerged as a critical node linking arousal, threat processing, and motivated behavior, yet the sources and functions of its modulatory inputs remain unclear. Here, we identify orexinergic projections to the SuM as a circuit mechanism that couples threat-related salience with approach behavior and nucleus accumbens dopamine signaling. We show that orexin terminals in the SuM are activated by stressful and uncertain stimuli but suppressed during consummatory behavior, and that selective activation of these terminals is positively reinforcing and drives rapid dopamine release. These findings reveal a pathway through which orexin neurons promote active coping and reward-seeking, advancing our understanding of how hypothalamic neuromodulation shapes mesolimbic function and adaptive behavioral responses.
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