Aristolochic acid-induced apoptosis and G2 cell cycle arrest depends on ROS generation and MAP kinases activation

Victor Romanov1, Terry C Whyard, Wayne C Waltzer

  • 1Department of Urology, SUNY at Stony Brook HSC, T09, Rm. 050, Stony Brook, NY, 11794, USA, Victor.Romanov@sbumed.org.

Insights

Aristolochic acids (AAs) cause kidney disease and urothelial cancer. This study reveals AAs induce renal epithelial cell cycle arrest via reactive oxygen species (ROS) and apoptosis, contributing to kidney fibrosis.

Area of Science:

  • Nephrology
  • Toxicology
  • Cell Biology

Background:

  • Aristolochic acids (AAs) from herbal remedies cause renal disease and urothelial malignancy.
  • AA genotoxicity in renal cells, including DNA adducts, is known.
  • Mechanisms of AA-induced tubular atrophy and renal fibrosis remain unclear.

Purpose of the Study:

  • Investigate cell cycle distribution and survival of renal epithelial cells exposed to aristolochic acid I (AAI).
  • Elucidate the role of reactive oxygen species (ROS) and mitogen-activated protein kinases (MAPKs) in AA toxicity.
  • Understand mechanisms underlying AA-induced renal fibrosis.

Main Methods:

  • Treatment of renal epithelial cells with varying doses of AAI.
  • Analysis of cell cycle distribution using flow cytometry.
  • Assessment of DNA damage response pathways (ATM-Chk2-p53-p21).
  • Measurement of ROS production and MAPK activation (ERK1/2, p38, JNK).
  • Pharmacological inhibition of ERK1/2, p38, and ROS scavenging with N-acetyl-L-cysteine.

Main Results:

  • Low-dose AA induced G2/M cell cycle arrest via ATM-Chk2-p53-p21 pathway, likely mediated by ROS.
  • High-dose AA induced apoptosis.
  • ERK1/2 and p38 MAPKs were activated by AA.
  • Inhibition of ERK1/2, p38, or ROS reduced G2/M arrest and apoptosis.

Conclusions:

  • AA-induced cell cycle arrest may facilitate DNA repair, cell survival, or epithelial-to-fibroblast reprogramming.
  • Apoptosis at higher AA doses may create space for fibrotic cells.
  • ROS and MAPK pathways are critical mediators of AA nephrotoxicity and fibrosis.

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