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De Gregorio, D.

Publications and source records attributed to De Gregorio, D..

2 recordsLinked to original sources

Pancreatic mu opioid receptors regulate metabolism and ingestive behaviors

The mu opioid receptor system has long been recognized for its role in regulating ingestive behaviors and food palatability. However, beyond their robust expression in the brain, opioid receptors are also found throughout the body, including the stomach, intestines, and pancreas. Previous studies suggest that opioids may directly regulate glycemia through actions in the endocrine pancreas, but whether these metabolic effects are linked to their influence on ingestive behavior remains unclear. Here, we used metabolic, ingestive, and genetic approaches to determine how the mu opioid receptor (MOPR) regulates in vivo phenotypes via its actions in endocrine pancreas. Glucose and insulin tolerance tests in male Oprm1 KO mice had enhanced glucose tolerance and insulin sensitivity. Conditional deletion of MOPRs in alpha cells had no effect. To test if loss of MOPRs influence overt ingestive behaviors, we measured 24-hour ad libitum food consumption using Feeding Experimental Devices (FEDs) in wild type, Oprm1 knockout (MOPR-deficient) and GCG-Cre x Oprm1fl/fl mice (10-12 weeks old). We found that Oprm1 KO male, but not female, mice exhibited increased mass and food intake, and dysregulated ingestive microstructures relative to wild type controls. Conditional deletion of MOPRs in alpha cells only recapitulated some of the phenotypes related to ingestive microstructure. These findings suggest that MOPR regulation of ingestive behaviors extends beyond typical neural circuits of reward to include peripheral metabolic organ mechanisms. Highlights- Male Oprm1 knockout mice show increased body mass and food intake - Male, but not female, Oprm1 knockout mice have enhanced glucose tolerance and insulin sensitivity - MOPR deletion in pancreatic alpha cells did not alter glucose metabolism - MOPR deletion in alpha cells increased meal frequency but reduced meal size in males - MOPR deletion in alpha cells only reduced meal size in females

animal behavior and cognition↗

MOPRs in mouse islets of Langerhans modulate cell signaling and secretion

Article highlightsO_LIMu opioid receptors are expressed on multiple islets of Langerhans cell types C_LIO_LIMu opioid receptors on islets engage canonical Gi signaling cascades in islets C_LIO_LIMu opioid receptors on islets modulate calcium influx and oscillations C_LIO_LIMu opioid receptors on islets modulate insulin and glucagon secretion. C_LI Most clinically and recreationally used opioids drugs act on the endogenous mu opioid receptor (MOPR). While MOPR is typically studied in the context of addiction and analgesia, decades of evidence indicates that they have a strong modulatory role on metabolism and glycemia. However, whether these effects are directly driven by MOPR actions on pancreatic islets remains poorly understood. Here we sought to comprehensively profile MOPRs on islets to assess how their activity shapes cellular physiology and secretion. First, we used RNA-seq, fluorescent in situ hybridization, and immunoblotting approaches to map islet expression. We observed robust expression of MOPR across multiple cell types in islets. Next, using a FRET-based approach, we show that MOPRs recruit canonical inhibitory pathways, reducing cAMP accumulation. Correspondingly, islets from constitutive MOPR knockout mice showed increased calcium influx and oscillations. However, MOPR knockout had no effect on insulin secretion, instead increase glucagon secretion. Surprisingly, while MOPR antagonism increased overall calcium, it reduced calcium oscillations and suppressed insulin secretion. By contrast MOPR agonism suppressed calcium, increased oscillations, and had no effect on overall hormone secretion. Collectively, these results suggest that MOPR can profoundly shape islet activity, with these effects likely driven by their actions on distinct cell types.

pharmacology and toxicology↗