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Aponte, Y.

Publications and source records attributed to Aponte, Y..

2 recordsLinked to original sources

Anterior hypothalamic parvalbumin neurons are glutamatergic and promote escape behavior

The anterior hypothalamic area (AHA) is a critical structure for defensive responding. Here, we identified a cluster of parvalbumin-expressing neurons in the AHA (AHAPV) that are glutamatergic with fast-spiking properties and send axonal projections to the dorsal premammillary nucleus (PMD). Using in vivo functional imaging, optogenetics, and behavioral assays, we determined the role of these AHAPV neurons in regulating behaviors essential for survival. We observed that AHAPV neuronal activity significantly increases when mice are exposed to a predator, and in a real-time place preference assay, we found that AHAPV neuron photoactivation is aversive. Moreover, activation of both AHAPV neurons and the AHAPV[->]PMD pathway triggers escape responding during a predator-looming test. Furthermore, escape responding is impaired after AHAPV neuron ablation, and anxiety-like behavior as measured by the open field and elevated plus maze assays does not seem to be affected by AHAPV neuron ablation. Finally, whole-brain metabolic mapping using positron emission tomography combined with AHAPV neuron photoactivation revealed discrete activation of downstream areas involved in arousal, affective, and defensive behaviors including the amygdala and the substantia nigra. Our results indicate that AHAPV neurons are a functional glutamatergic circuit element mediating defensive behaviors, expanding the identity of genetically defined neurons orchestrating fight-or-flight responses. Together, our work will serve as a foundation for understanding neuropsychiatric disorders such as aggression or fear.

neuroscience↗

Activation of the fear-responsive anterior hypothalamic area promotes avoidance and triggers compulsive grooming behavior in mice

The anterior hypothalamic area (AHA) is a key brain region for orchestrating defensive behaviors. Here, we first examined AHA activity patterns during fear conditioning using in vivo functional imaging. We observed that neuronal activity in the AHA increases during both foot shock delivery and foot-shock associated auditory cues. Moreover, we used a combination of optogenetics and behavioral assays to determine the functional connectivity between the ventromedial hypothalamus (VMH) and the AHA. We found that photoactivation of the VMH[->]AHA pathway is aversive and triggers compulsive grooming behavior. Furthermore, we observed spatial and temporal changes of grooming behavior during the periods following VMH[->]AHA photoactivation. Interestingly, whole brain metabolic mapping using positron emission tomography (PET) combined with optogenetic activation of the VMH[->]AHA pathway in anesthetized mice revealed the amygdala as a downstream area activated by the stimulation of this pathway. Together, our findings show that the AHA responds to threat and that such increases in activity are sufficient to trigger compulsive grooming behavior. Thus, our results may help to understand some neuropsychiatric disorders characterized by repetitive and compulsive behaviors.

neuroscience↗