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Moody, O. P.

Publications and source records attributed to Moody, O. P..

3 recordsLinked to original sources

Nutrient-dependent hippocampus dopamine signaling enhances meal-related episodic memory and reduces food intake

BackgroundDopamine (DA) is a neurotransmitter critically involved in food-related reinforcement learning. While mesolimbic DA reward-associated signaling in the nucleus accumbens has been widely investigated, far less is known about DA function in the hippocampus (HPC), a brain region traditionally known for its role in episodic and spatial memory processes that has recently been associated with appetite and food intake control. MethodsHere we investigated dorsal HPC DA signaling dynamics in rats using fiber photometry to detect changes in DA binding (via GRAB-DA sensors) before, during, and after a meal consumption in food-restricted rats. Pharmacological studies targeting HPC dopamine 2 receptors (D2R) assessed the functional role of HPC DA signaling in food intake and meal-related memory processes. ResultsHPC DA binding was significantly elevated in the post-meal relative to the pre-meal state following standard chow consumption. This effect was replicated after consuming a high fat diet or liquid sucrose, but not a low-calorie sweetener. These post-meal DA signaling elevations are dependent on nutrient consumption, as HPC DA binding levels were unaffected by intraperitoneal administration of glucose or the satiation hormone, cholecystokinin, in otherwise fasted rats. Direct HPC D2R agonists administration reduced food intake, whereas HPC D2R blockade after a meal reduced the latency to the next meal and impaired spatial memory for meal location without affecting spatial memory for object location. ConclusionsCollective results identify HPC DA-D2R signaling as a candidate neurobiological mechanism through which nutrient consumption promotes meal-related episodic memory formation, and by extension, reduces subsequent food intake.

neuroscience↗

A ventral hippocampus to nucleus accumbens pathway regulates impulsivity

Heightened impulsivity is attributed with substance abuse disorders, gambling, and obesity. The ventral hippocampus (vHPC) has recently been linked with impulse control, yet the neurobiological and behavioral mechanisms through which this control occurs are unknown. A subset of vHPC neurons project to the nucleus accumbens (ACB), a brain region known for regulating reward and motivation. Here, we evaluated the role of vHPC-ACB signaling in food-directed impulsivity using fiber photometry and transsynaptic chemogenetic and behavioral approaches. Male and female rats were trained in the differential reinforcement of low rates of responding (DRL) test of impulsive action, where they learn to withhold lever presses for 20 seconds to obtain a palatable food reward. Photometry recordings during DRL revealed analogous elevations in calcium-dependent activity in the vHPC and ACB during the 5s immediately prior to a non-impulsive vs. an impulsive response. Chemogenetic silencing of ACB-projecting vHPC neurons elevated impulsive responses in DRL relative to vehicle treatment in males but not females, yet had no effect on home cage food intake, operant-based motivation to work for palatable food, impulsive choice, or anxiety-like behavior. To determine whether this impulse control circuit requires vHPC->ACB communication independent of collateral targets of ACB-projecting vHPC neurons, we utilized a novel transsynaptic viral approach to selectively silence ACB neurons that receive synaptic glutamatergic signaling from the vHPC. Results reveal that inhibition of ACB neurons receiving vHPC signaling elevates impulsive action in the DRL task relative to vehicle treatment. Collective results reveal a hippocampal-striatal circuit that regulates impulsive action in males.

neuroscience↗

Early life food insecurity impairs memory function during adulthood

Approximately 14% of U.S. households are estimated to be food insecure. The neurocognitive and metabolic impacts of unpredictable food access during early-life periods of development are poorly understood. To address these gaps we devised a novel rat model of food insecurity to control the timing, type, and quantity of accessible food using programmable feeders. Male rats were divided into 3 groups: Secure-chow (SC), a control group given 100% of daily caloric needs, distributed evenly across 4 daily meals of standard chow at set mealtimes; Secure-mixed (SM), a 2nd control group identical to the SC group except that the food type predictably alternated daily between chow and a high-fat, high-sugar diet (HFHS); and Insecure-mixed (IM), the experimental group given randomly alternating daily access to either chow or HFHS at either 85% or 115% of daily caloric needs, distributed evenly across 3 daily meals with unpredictable mealtimes. These feeding schedules were implemented from postnatal days (PNs) 26-45, after which all groups received chow ad libitum. Metabolic assessments performed in adulthood revealed no group differences in caloric intake, body weight, or body composition when maintained on either chow (PN46-149) or a cafeteria diet (PN150-174). Behavioral measures (PN66-126) revealed no group differences in anxiety-like, exploratory, or impulsive behavior (zero maze, open field, differential reinforcement of low rates of responding procedures). However, the IM group exhibited hippocampus-dependent memory impairments compared to both control groups in the novel location recognition test. These findings suggest that early-life food insecurity may contribute to long-term impairments in memory function.

neuroscience↗