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Dhamshy, A.

Publications and source records attributed to Dhamshy, A..

3 recordsLinked to original sources

The nucleus of the lateral olfactory tract is required for learning odor-guided food avoidance

Foraging animals must continually evaluate whether potential food sources are safe to consume. Such decisions rely on both innate preferences and learned associations formed through prior experience. Consumption of a food followed by malaise or sickness leads to avoidance of that food, reflecting learned associations between sensory cues that identify a food and its negative post-ingestive consequences. Although this form of learning has been studied extensively using taste cues, taste signals arise only after oral contact, at which point exposure to potential toxins has already occurred. Olfactory cues, in contrast, provide information about potential food sources prior to consumption, yet how odors acquire aversive value remains unclear. Here, using targeted chemogenetic perturbations, we identify the nucleus of the lateral olfactory tract (NLOT), which has direct bidirectional connectivity to olfactory regions and the basolateral amygdala, as a critical circuit element for odor-aversion learning. We find that the NLOT is required for conditioned odor aversion but is dispensable for other odor-guided behaviors and for fear conditioning driven by a non-olfactory cue. Our findings identify a selective role for the NLOT in linking olfactory cues to learned aversive outcomes, that supports odor-guided behavioral decisions. Significance statementAnimals rely on smell to evaluate food safety before consuming it, yet the brain circuits that link odor cues to learned aversive outcomes remain poorly understood. Here we identify the nucleus of the lateral olfactory tract (NLOT), a largely unstudied region at the interface between olfactory and limbic circuits, as a critical and selective node for conditioned odor aversion learning. Chemogenetic perturbations of the NLOT disrupted both the acquisition and expression of odor-malaise associations, while leaving odor detection, odor discrimination, and non-olfactory fear learning intact -- revealing a previously unrecognized specialization within olfactory-amygdala circuits that supports odor-guided decisions about food safety.

neuroscience↗

A Sexually Dimorphic Neuronal Cluster in the Mouse Medial Amygdala Exhibits Binary Activation Mode Based on Male Sexual Status

Increasing scientific interest has been directed toward understanding sexual dimorphism in the brain. Although various brain structures exhibit masculine or feminine characteristics, no strictly binary anatomical feature, such as those seen in genitalia. has been identified. In this study, we identified a dense, sexually dimorphic cluster of neurons in the posterodorsal medial amygdala (MeApd), which we named DIMPLE, that exhibited a remarkable binary pattern of cFos activation. Using the TRAP2 (Targeted Recombination in Active Populations) transgenic mouse model, we found that it was consistently labeled in all females, regardless of age or sexual experience. In males, however, DIMPLE was not labeled in any of the adult virgins but was evident pre-weaning and following mating. Surgical removal of gonads (ovariectomy or orchiectomy) did not alter the labeling pattern of DIMPLE in either sex. Interestingly, a single intraperitoneal injection of prolactin, a hormone known to increase in males after mating, induced DIMPLE labeling in virgin males. However, treatment with cabergoline, a potent inhibitor of prolactin secretion, did not prevent DIMPLE labeling in females or in post-mating males. Given the established role of the MeApd in social and reproductive behaviors, we propose that DIMPLE may support neural mechanisms underlying female-typical behavior and potentially contribute to post-mating behavioral shifts in males. O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=171 SRC="FIGDIR/small/663831v1_ufig1.gif" ALT="Figure 1"> View larger version (45K): org.highwire.dtl.DTLVardef@5f414corg.highwire.dtl.DTLVardef@1b7e9e5org.highwire.dtl.DTLVardef@15cf4bdorg.highwire.dtl.DTLVardef@1c7bc95_HPS_FORMAT_FIGEXP M_FIG O_FLOATNOGraphical abstract:C_FLOATNO Summary of DIMPLE activity during puberty and sexual status. C_FIG

neuroscience↗

Synaptic connectivity and electrophysiological properties of the nucleus of the lateral olfactory tract

The sense of smell is tightly linked to emotions, a link that is thought to rely on the direct synaptic connections between the olfactory bulb and nuclei of the amygdala. A small number of amygdaloid nuclei are the recipients of such direct input from the olfactory bulb and their unique functions are not known. Among them, the nucleus of the lateral olfactory tract (NLOT) is unique in its developmental history and gene expression. NLOT has been very little studied and consequentially its function is unknown. Furthermore, formulation of informed hypotheses about NLOT function is at this stage limited by the lack of knowledge about its connectivity and physiological properties. Here, we used pseudo-rabies tracing methods to systematically reveal monosynaptic inputs into NLOT, and adeno-associated viruses to reveal NLOT projection targets. We found that the NLOT is interconnected with several olfactory brain regions and with the basolateral amygdala. Some of these connections were reciprocal, and some showed unique interhemispheric patterns. We tested the excitable properties of NLOT neurons and the properties of each of the major synaptic inputs. We found that the NLOT receives powerful input from piriform cortex, tenia tecta, and the basolateral amygdala, but only very weak input from the olfactory bulb. When input crosses threshold, NLOT neurons respond with calcium-dependent bursts of action potentials. This integration of olfactory and amygdalar inputs suggests that NLOT plays a role in behaviors that combine smell and emotion, possibly assigning emotional value to odors. Significance statementDespite the well-known functional links between olfaction and emotions, the physiological properties of these links remain largely understudied. One major pathway by which olfactory and emotional signals interact, is via the nucleus of the lateral olfactory tract (NLOT). NLOT has been little studied and its function is yet unclear. The lack of physiological information hinders informed hypotheses. Here, we characterize the synaptic and intrinsic properties of NLOT neurons. We show that the NLOT receives converging olfactory and amygdalar inputs, and that NLOT neurons respond to input with high-rate bursts of action potentials. This suggests that the NLOT, that harbors [~]2500 cells, encodes a low-dimensional signal that is of high importance. We hypothesize that the NLOT assigns emotional value to odors.

neuroscience↗