1. Academic Validation
  2. The antioxidant silybin prevents high glucose-induced oxidative stress and podocyte injury in vitro and in vivo

The antioxidant silybin prevents high glucose-induced oxidative stress and podocyte injury in vitro and in vivo

  • Am J Physiol Renal Physiol. 2013 Sep 1;305(5):F691-700. doi: 10.1152/ajprenal.00028.2013.
Khaled Khazim 1 Yves Gorin Rita Cassia Cavaglieri Hanna E Abboud Paolo Fanti
Affiliations

Affiliation

  • 1 Univ. of Texas Health Science Center, Dept. of Medicine, Division of Nephrology MC 7882, 7703 Floyd Curl Drive, San Antonio, TX 78229-3900, USA.
Abstract

Podocyte injury, a major contributor to the pathogenesis of diabetic nephropathy, is caused at least in part by the excessive generation of Reactive Oxygen Species (ROS). Overproduction of superoxide by the NADPH Oxidase isoform Nox4 plays an important role in podocyte injury. The plant extract silymarin is attributed antioxidant and antiproteinuric effects in humans and in animal models of diabetic nephropathy. We investigated the effect of silybin, the active constituent of silymarin, in cultures of mouse podocytes and in the OVE26 mouse, a model of type 1 diabetes mellitus and diabetic nephropathy. Exposure of podocytes to high glucose (HG) increased 60% the intracellular superoxide production, 90% the NADPH Oxidase activity, 100% the Nox4 expression, and 150% the number of apoptotic cells, effects that were completely blocked by 10 μM silybin. These in vitro observations were confirmed by similar in vivo findings. The kidney cortex of vehicle-treated control OVE26 mice displayed greater Nox4 expression and twice as much superoxide production than cortex of silybin-treated mice. The glomeruli of control OVE26 mice displayed 35% podocyte drop out that was not present in the silybin-treated mice. Finally, the OVE26 mice experienced 54% more pronounced albuminuria than the silybin-treated Animals. In conclusion, this study demonstrates a protective effect of silybin against HG-induced podocyte injury and extends this finding to an animal model of diabetic nephropathy.

Keywords

NADPH oxidase; albuminuria; apoptosis; diabetic nephropathy; phytochemicals.

Figures
Products