Therapeutic Effects of Gallic Acid in Regulating Senescence and Diabetes; an In Vitro Study

Molecules. 2020 Dec 11;25(24):5875. doi: 10.3390/molecules25245875.

Abstract

Gallic acid (GA), a plant-derived ubiquitous secondary polyphenol metabolite, can be a useful dietary supplement. This in vitro study's primary purpose was to assess the anti-aging properties of GA using rat embryonic fibroblast (REF) cells, antidiabetic effects via pancreatic islet cells, and finally, elucidating the molecular mechanisms of this natural compound. REF and islet cells were isolated from fetuses and pancreas of rats, respectively. Then, several senescence-associated molecular and biochemical parameters, along with antidiabetic markers, were investigated. GA caused a significant decrease in the β-galactosidase activity and reduced inflammatory cytokines and oxidative stress markers in REF cells. GA reduced the G0/G1 phase in senescent REF cells that led cells to G2/M. Besides, GA improved the function of the β cells. Flow cytometry and spectrophotometric analysis showed that it reduces apoptosis via inhibiting caspase-9 activity. Taken together, based on the present findings, this polyphenol metabolite at low doses regulates different pathways of senescence and diabetes through its antioxidative stress potential and modulation of mitochondrial complexes activities.

Keywords: antioxidant; diabetes; gallic acid; polyphenol; secondary metabolite; senescence.

MeSH terms

  • Animals
  • Antioxidants
  • Apoptosis
  • Caspase 9 / metabolism
  • Cell Cycle / drug effects
  • Cellular Senescence*
  • Diabetes Mellitus / drug therapy*
  • Fibroblasts / drug effects
  • Flow Cytometry
  • Gallic Acid / chemistry
  • Gallic Acid / therapeutic use*
  • In Vitro Techniques
  • Inflammation
  • Islets of Langerhans / drug effects
  • Islets of Langerhans / embryology
  • Oxidative Stress
  • Polyphenols / chemistry
  • Rats
  • Spectrophotometry
  • beta-Galactosidase / metabolism

Substances

  • Antioxidants
  • Polyphenols
  • Gallic Acid
  • beta-Galactosidase
  • Caspase 9