Therapeutic Potential of Phlorotannin-Rich Ecklonia cava Extract on Methylglyoxal-Induced Diabetic Nephropathy in In Vitro Model

Mar Drugs. 2022 May 27;20(6):355. doi: 10.3390/md20060355.

Abstract

Advanced glycation end-products (AGEs) play a vital role in the pathogenesis of diabetic complications. Methylglyoxal (MGO), one of the major precursors of AGEs, is a highly reactive dicarbonyl compound that plays an important role in the pathogenesis of diabetic nephropathy. This study was designed to evaluate the therapeutic potential of phlorotannin-rich Ecklonia cava extract (ECE) on MGO-induced diabetic nephropathy in in vitro models using mouse glomerular mesangial cells. ECE showed anti-glycation activity via breaking of AGEs-collagen cross-links and inhibition of AGEs formation and AGE-collagen cross-linking formation. The renoprotective effects were determined by assessing intracellular reactive oxygen species (ROS) and MGO accumulation, cell apoptosis, and the Nrf-2/ARE signaling pathway. MGO-induced renal damage, intracellular ROS production level, and MGO-protein adduct accumulation were significantly decreased by pretreating ECE. Moreover, ECE pretreatment exhibited preventive properties against MGO-induced dicarbonyl stress via activation of the Nrf2/ARE signaling pathway and reduction of RAGE protein expression in mouse glomerular mesangial cells. Collectively, these results indicated potential anti-glycation properties and prominent preventive effects of ECE against MGO-induced renal damage. Additionally, ECE may be utilized for the management of AGE-related diabetic nephropathy.

Keywords: Ecklonia cava; MAPK signaling pathway; Nrf2/ARE signaling pathway; RAGE; advanced glycation end-products; apoptosis; diabetic nephropathy; methylglyoxal; mouse glomerular mesangial cell; phlorotannin.

MeSH terms

  • Animals
  • Diabetes Mellitus*
  • Diabetic Nephropathies* / chemically induced
  • Diabetic Nephropathies* / drug therapy
  • Diabetic Nephropathies* / metabolism
  • Glycation End Products, Advanced / metabolism
  • Magnesium Oxide
  • Mice
  • Pyruvaldehyde / toxicity
  • Reactive Oxygen Species / metabolism

Substances

  • Glycation End Products, Advanced
  • Reactive Oxygen Species
  • Magnesium Oxide
  • Pyruvaldehyde