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Published on: June 27, 2014
Differential Responses to Sigma-1 or Sigma-2 Receptor Ablation in Adiposity, Fat Oxidation, and Sexual Dimorphism
Jing Li1, Elisa Félix-Soriano2, Katherine R Wright2
1Department of Surgery, School of Medicine, University of Virginia, Charlottesville, VA 22908, USA.
Abstract:
Obesity is increasing at epidemic rates across the US and worldwide, as are its co-morbidities, including type-2 diabetes and cardiovascular disease. Thus, targeted interventions to reduce the prevalence of obesity are of the utmost importance. The sigma-1 receptor (S1R) and sigma-2 receptor (S2R; encoded by Tmem97) belong to the same class of drug-binding sites, yet they are genetically distinct. There are multiple ongoing clinical trials focused on sigma receptors, targeting diseases ranging from Alzheimer's disease through chronic pain to COVID-19. However, little is known regarding their gene-specific role in obesity. In this study, we measured body composition, used a comprehensive laboratory-animal monitoring system, and determined the glucose and insulin tolerance in mice fed a high-fat diet. Compared to Sigmar1+/+ mice of the same sex, the male and female Sigmar1-/- mice had lower fat mass (17% and 12% lower, respectively), and elevated lean mass (16% and 10% higher, respectively), but S1R ablation had no effect on their metabolism. The male Tmem97-/- mice exhibited 7% lower fat mass, 8% higher lean mass, increased volumes of O2 and CO2, a decreased respiratory exchange ratio indicating elevated fatty-acid oxidation, and improved insulin tolerance, compared to the male Tmem97+/+ mice. There were no changes in any of these parameters in the female Tmem97-/- mice. Together, these data indicate that the S1R ablation in male and female mice or the S2R ablation in male mice protects against diet-induced adiposity, and that S2R ablation, but not S1R deletion, improves insulin tolerance and enhances fatty-acid oxidation in male mice. Further mechanistic investigations may lead to translational strategies to target differential S1R/S2R regulations and sexual dimorphism for precision treatments of obesity.
Insights
Ablating sigma-1 receptors (S1R) reduced obesity in male and female mice. Ablating sigma-2 receptors (S2R) in males also reduced obesity, improved insulin tolerance, and enhanced fatty-acid oxidation.
Area of Science:
- Pharmacology
- Metabolic Diseases
- Genetics
Background:
- Obesity and its comorbidities, like type-2 diabetes and cardiovascular disease, are increasing globally.
- Sigma-1 receptor (S1R) and sigma-2 receptor (S2R) are drug-binding sites with potential therapeutic applications, but their roles in obesity are unclear.
- Targeted interventions for obesity are crucial, necessitating a deeper understanding of underlying molecular mechanisms.
Purpose of the Study:
- To investigate the gene-specific roles of S1R and S2R in diet-induced obesity.
- To determine the effects of S1R and S2R ablation on body composition, metabolism, and insulin sensitivity in mice.
- To explore potential sex-specific differences in the effects of S1R and S2R on metabolic parameters.
Main Methods:
- Mice lacking S1R (Sigmar1-/-) or S2R (Tmem97-/-) were fed a high-fat diet.
- Body composition was measured, including fat and lean mass.
- Metabolic parameters, such as oxygen consumption, carbon dioxide production, respiratory exchange ratio, and glucose/insulin tolerance, were assessed.
Main Results:
- S1R ablation in both male and female mice led to reduced fat mass and increased lean mass compared to controls.
- S2R ablation in male mice resulted in lower fat mass, higher lean mass, increased oxygen consumption, decreased respiratory exchange ratio, and improved insulin tolerance.
- No significant metabolic changes were observed in female Tmem97-/- mice or in S1R-ablated mice's metabolism.
Conclusions:
- S1R ablation protects against diet-induced adiposity in both sexes.
- S2R ablation in male mice confers protection against diet-induced obesity, enhances fatty-acid oxidation, and improves insulin tolerance.
- Differential S1R/S2R regulation and sexual dimorphism present potential targets for precision obesity treatments.

