Gut microbiota associated with appetite suppression in high-temperature and high-humidity environments

EBioMedicine. 2024 Jan:99:104918. doi: 10.1016/j.ebiom.2023.104918. Epub 2023 Dec 16.

Abstract

Background: Food is crucial for maintaining vital human and animal activities. Disorders in appetite control can lead to various metabolic disturbances. Alterations in the gut microbial composition can affect appetite and energy metabolism. While alterations in the gut microbiota have been observed in high-temperature and high-humidity (HTH) environments, the relationship between the gut microbiota during HTH and appetite remains unclear.

Methods: We utilised an artificial climate box to mimic HTH environments, and established a faecal bacteria transplantation (FMT) mouse model. Mendelian randomisation (MR) analysis was used to further confirm the causal relationship between gut microbiota and appetite or appetite-related hormones.

Findings: We found that, in the eighth week of exposure to HTH environments, mice showed a decrease in food intake and body weight, and there were significant changes in the intestinal microbiota compared to the control group. After FMT, we observed similar changes in food intake, body weight, and gut bacteria. Appetite-related hormones, including ghrelin, glucagon-like peptide-1, and insulin, were reduced in DH (mice exposed to HTH conditions) and DHF (FMT from mice exposed to HTH environments for 8 weeks), while the level of peptide YY initially increased and then decreased in DH and increased after FMT. Moreover, MR analysis further confirmed that these changes in the intestinal microbiota could affect appetite or appetite-related hormones.

Interpretation: Together, our data suggest that the gut microbiota is closely associated with appetite suppression in HTH. These findings provide novel insights into the effects of HTH on appetite.

Funding: This work was supported by the National Natural Science Foundation of China and Guangzhou University of Chinese Medicine.

Keywords: Appetite suppression; Gut microbiota; High-temperature and high-humidity environments; Mendelian randomization analyses.

MeSH terms

  • Animals
  • Appetite
  • Body Weight
  • Gastrointestinal Microbiome*
  • Humans
  • Humidity
  • Mice
  • Temperature