Anti-Glycation Properties of Zinc-Enriched Arthrospira platensis (Spirulina) Contribute to Prevention of Metaflammation in a Diet-Induced Obese Mouse Model

Nutrients. 2024 Feb 17;16(4):552. doi: 10.3390/nu16040552.

Abstract

Advanced glycation end products (AGEs) exert a key pathogenic role in the development of obesity and insulin resistance. Thanks to its abundance in bioactive compounds, the microalga Arthrospira platensis (spirulina, SP) is proposed as a nutritional supplement. Here, we investigated the potential anti-glycating properties of SP enriched with zinc (Zn-SP) and the following impact on diet-induced metabolic derangements. Thirty male C57Bl6 mice were fed a standard diet (SD) or a high-fat high-sugar diet (HFHS) for 12 weeks, and a subgroup of HFHS mice received 350 mg/kg Zn-SP three times a week. A HFHS diet induced obesity and glucose intolerance and increased plasma levels of pro-inflammatory cytokines and transaminases. Zn-SP administration restored glucose homeostasis and reduced hepatic dysfunction and systemic inflammation. In the liver of HFHS mice, a robust accumulation of AGEs was detected, paralleled by increased expression of the main AGE receptor (RAGE) and depletion of glyoxalase-1, whereas Zn-SP administration efficiently prevented these alterations reducing local pro-inflammatory responses. 16S rRNA gene profiling of feces and ileum content revealed altered bacterial community structure in HFHS mice compared to both SD and HFHS + Zn-SP groups. Overall, our study demonstrates relevant anti-glycation properties of Zn-SP which contribute to preventing AGE production and/or stimulate AGE detoxification, leading to the improvement of diet-related dysbiosis and metabolic derangements.

Keywords: Arthrospira platensis (spirulina); advanced glycation end products (AGEs); glyoxalase-1 (GLO1); metaflammation; receptor for AGEs (RAGE); zinc supplementation.

MeSH terms

  • Animals
  • Diet, High-Fat / adverse effects
  • Disease Models, Animal
  • Male
  • Mice
  • Mice, Inbred C57BL
  • Mice, Obese
  • Obesity / etiology
  • Obesity / metabolism
  • RNA, Ribosomal, 16S
  • Spirulina* / chemistry
  • Zinc

Substances

  • Zinc
  • RNA, Ribosomal, 16S

Supplementary concepts

  • Arthrospira platensis

Grants and funding

This research was funded by grants from the University of Turin (Ricerca Locale 2022 and 2023), the Italian Ministry of Agricultural, Food and Forestry Policies (HDHL METADIS, ID project: 1170–Carb-Q-4-Health: Tailored Carbohydrate Quality for Personalized Weight Management and Metabolic Health) and the Italian Ministry of Education, Universities and Research (PRIN 2022 ID project: 20224PR8HE).