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Callas, E.

Publications and source records attributed to Callas, E..

2 recordsLinked to original sources

Hippocampal reactivation of aversive experience enables safety learning and slow-breathing state for recovery from stress

Adaptive threat responses require both defensive behaviours to minimize danger and recovering from the induced physiological stress. However, the behavioural and neural basis of these recuperative strategies are still elusive. Using a novel two-location fear conditioning paradigm in mice, we have identified a slow-breathing immobility state of recovery that emerges when animals identify safe environments after threat avoidance. This immobile state was characterized by a 2-4 Hz breathing profile and replay of the aversive experience in the hippocampus. Suppressing hippocampal sharp-wave ripples (SWRs) inhibited the emergence of this recovery state, suggesting their role in learning safe locations. Anxiolysis with diazepam directly promoted the recovery state while suppressing SWRs, showing this treatment to be a double-edged sword that facilitates immediate relief but impairs long-term safety learning. These results demonstrate the importance of hippocampal replay for emotional resilience through its role in recovery.

neuroscience↗

Chronically implantable μLED arrays for optogenetic cortical surface stimulation in mice

Cortical implants are a proven clinical neurotechnology with the potential to transform our understanding of cognitive processes. These processes rely on complex neuronal networks that are difficult to selectively probe or stimulate. Optogenetics offers cell-type specificity, but achieving the density and coverage required for chronic, high-resolution modulation remains a challenge. Here we present a 100-element {micro}LED array (200 {micro}m pixel pitch, 2 x 2 mm2 footprint) coupled into a miniaturised, flexible system suitable for chronic implantation and optogenetic stimulation of the surface of the mouse cortex. The {micro}LEDs can remain stable for over 300 hours continuous operation time in-vivo, allowing for months-long chronic experiments. Simultaneous electrophysiology recordings confirmed robust neuronal responses corresponding to low {micro}LED drive currents (<5 mA), minimising thermal effects and supporting future wireless operation. The spatial resolution of neuronal responses was consistent with a simulated model of light scattering in the cortical layers, enabling device optimisation. Behavioural experiments with chronically implanted mice demonstrated robust learning during discrimination tasks using spatially distinct optogenetic stimulation patterns.

neuroscience↗