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Cortopassi, M. D.

Publications and source records attributed to Cortopassi, M. D..

2 recordsLinked to original sources

A Preoptic Neurocircuit That Modulates Metabolic Flexibility

Precise, dynamic control of metabolic fuel usage in response to environmental challenges such as altered food availability or temperature change is essential for animal survival. In mammals, metabolic flexibility--the capacity to shift cellular metabolism between carbohydrate and fatty acid oxidation--is understood to be largely regulated by circulating hormones such as insulin and glucagon. However, the role of the central nervous system in coordinating fuel selection and tissue metabolic tuning remains underexplored. Here, we investigated the mechanisms that mediate metabolic reprogramming following the acute activation of torpor-associated glutamatergic Adcyap1+ torpor-regulating neurons in the anteroventral preoptic area (avPOAVglut2/PACAP). The activation of these neurons rapidly shifts whole-body fuel use from glucose to fatty acids, irrespective of fuel/food availability. This shift is associated with reduced glucose utilization stemming from the transient induction of selective insulin resistance in skeletal muscle. We find that this reduction in skeletal muscle glucose metabolism does not require direct muscle innervation but is rather mediated in part via corticosterone. In contrast to their activation, avPOAVglut2/PACAP neuronal silencing results in improved glucose tolerance, demonstrating powerful bidirectional control of tissue-specific glucose metabolism, whole-body glucose levels, and fuel usage. Together, our findings uncover a novel POA -skeletal muscle pathway that dynamically controls glucose utilization and metabolic flexibility.

neuroscience↗

Microbial metabolism of mannitol as a tracer for the non-invasive measurement of oral-cecal transit

The timing of digestion after a meal reveals information essential for evaluating gastrointestinal function and overall digestive health. Alterations in transit time through the GI tract can reveal abnormalities such as delayed gastric emptying and provide critical insights into nutrient absorption dynamics. This information is particularly valuable for optimizing dietary interventions, managing metabolic conditions such as diabetes, and improving personalized nutrition strategies. Methods for measuring the oral to cecal transit time (OCTT) in murine models have significant limitations. We demonstrate a non-invasive approach in freely-moving non-anesthetized mice which quantifies the microbial digestion of the non-nutritive sweetener mannitol to CO2. We monitor cage air for the production of 13CO2 from 13C-enriched mannitol using Off-Axis Integrated Cavity Output Spectroscopy integrated with multiplexes indirect calorimetry. With this approach, we find mannitol oxidation is absent in mice following commensal depletion of the microbiota. In mice with conventional microbiota, the peak 13C-mannitol oxidation occurs proximal to the mouse cecum, allowing the quantitation of OCTT in mice. By tracking the output of 13CO2, this method provides highly granular, real-time data. We detect delayed OCTT with the use of pharmacological transit-altering compounds loperamide, a gut restricted opioid receptor agonist and also semaglutide, a GLP-1 receptor agonist. This approach may provide more physiologically relevant results in a range of genetic, environmental, and pharmacological research models.

physiology↗