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February 11, 2026Metabolites0 citationsOpen Access

Partial Serotonin Transporter Deficiency Modulates Plasma Metabolome, Arginine-Nitric Oxide Pathway and Emotional Behavior in Mice Exposed to Western Diet

AGAnna GorlovaRCRaymond CespuglioASAngelika G. Schmitt-Böhrer

Key Points

  • To explore the effects of partial serotonin transporter deficiency and Western diet on metabolic and behavioral outcomes in aged female mice.
  • Fed wild-type and Sert+/− mice a Western diet or control diet.
  • Assessed emotionality, cognition, glucose tolerance, and plasma metabolome using 1H NMR spectroscopy.
  • Conducted gene expression analyses of nitric oxide-related markers in brain and liver tissues.
  • Wild-type mice on Western diet showed impaired glucose tolerance and altered metabolome.
  • Sert+/− mice displayed lower levels of lactate and alanine compared to wild-type controls.
  • Both genotypes exhibited increased leptin and cholesterol levels on Western diet, but reduced triglycerides in Sert+/− mice.
  • Sert+/− mice had elevated oxidative stress in the prefrontal cortex regardless of diet.
  • Western diet led to anxiety- and depression-like behaviors, particularly in Sert+/− mice.

Abstract

Background/Objectives: Reduced serotonin transporter (SERT) function is associated with increased vulnerability to emotional and metabolic dysregulation, particularly in elderly women. Most preclinical studies relied on young male rodents with complete Sert deficiency; the Western diet (WD) acerbates these abnormalities. However, complete Sert loss does not fully reflect the human condition of partial SERT dysfunction. Here, we examined the effects of WD in aged female Sert+/− mice on metabolic, biochemical, molecular, and behavioral outcomes. Methods: Wild-type (WT) and Sert+/− mice were fed WD or a control diet. Emotionality, cognition, glucose tolerance (GT), plasma 1HNMR spectroscopy metabolome and biochemical parameters were studied. Gene expression analyses of nitric oxide (NO)-related markers were performed in the hypothalamus, dorsal raphe, and liver. Results: WD-exposed WT mice showed impaired GT and reduced plasma lactate and branched-chain amino acid levels; metabolome changes were more pronounced in mutants, while GT was unchanged. Naïve Sert+/− mice exhibited lower lactate and alanine levels compared with WT controls. WD increased leptin and cholesterol levels in both genotypes, whereas triglyceride concentrations were reduced in Sert+/− mice. Both WD and Sert deficiency increased Nos expression, while arginase expression was differentially regulated by genotype and diet. Malondialdehyde levels were elevated in the prefrontal cortex of Sert+/− mice regardless diet. WD also impaired object recognition memory and induced anxiety- and depression-like behaviors, with more pronounced effects in Sert+/− mice, except marble test behavior. Conclusions: Partial Sert deficiency aggravates some but not all WD-induced metabolic alterations, enhances oxidative stress, dysregulates arginine–NO signaling, and modifies behavior, highlighting the translational relevance of Sert+/− mice for modeling SERT dysfunction.

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Cite This Study

Gorlova et al. (2026) studied this question.

synapsesocial.com/papers/698c1cd3267fb587c655f898https://doi.org/10.3390/metabo16020117
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