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Biology subjects

Sandoval, I. C.

Publications and source records attributed to Sandoval, I. C..

2 recordsLinked to original sources

Anesthesia-triggered dopaminergic bursts actively induce forgetting: a paradigm shift in understanding cold-shock amnesia

Retrograde memory loss, the inability to recall events preceding amnesia onset, is a well-documented consequence of anesthesia. Recent discoveries, pioneered by Drosophila research, have challenged the view that forgetting is a passive process, and have demonstrated that rather it is a highly active, well-regulated biological process. This work builds on this and makes a remarkable and unexpected discovery that anesthesia itself triggers a robust, widespread burst of activity in dopaminergic neurons. Here, we report that both cold-shock and CO2 anesthesia elicits strong activation in PAM and PPL1 dopaminergic neuron populations. This calcium activity is accompanied by robust synaptic release of dopamine. Strikingly, pharmacological experiments show that this response is input-driven, as it is completely abolished by Na+ channel blockers and dampened by nAChR antagonists. Using behavioral methods, crucially, we show that anesthesia-induced amnesia can be prevented by blocking activity in PAM and PPL1 neurons during anesthesia. Together, our findings reveal a previously unrecognized active mechanism by which anesthesia induces forgetting, mediated by rapid dopaminergic signaling. This paradigm-shifting discovery redefines how we think about anesthesia-induced amnesia and the biology of forgetting.

neuroscience↗

Slit regulates compartment-specific targeting of dendrites and axons in the Drosophila brain

Proper nervous system functioning requires axons or dendrites targeting to specific subcellular domains of target neurons to form precise connections. Using mushroom body output neurons (MBONs) and dopaminergic neurons (DAN) in the Drosophila mushroom body as a model, we demonstrate that subcellular-specific targeting of MBON dendrites and DAN axons is regulated by repulsion between their dendrites/axons in neighboring subcellular domains. We further show that Slit mediates such repulsion by binding to distinct Robo receptors in different neurons. Loss of Slit-mediated repulsion leads to expansion of MBON dendrites and DAN axons into neighboring compartments, formation of ectopic synapses, and altered learning and memory. Our findings reveal a critical role of Slit-mediated repulsion between neighboring compartments in regulating subcellular-specific dendrite and axon targeting.

neuroscience↗