CR-LAAO causes genotoxic damage in HepG2 tumor cells by oxidative stress

Tássia R Costa1, Martin K Amstalden1, Diego L Ribeiro2

  • 1Department of Clinical Analyses, Toxicology and Food Sciences, School of Pharmaceutical Sciences of Ribeirão Preto, University of São Paulo, Avenida do Café s/no, CEP 14040-903, Ribeirão Preto, São Paulo, Brazil.

Toxicology
|May 9, 2018
PubMed

Insights

Snake venom L-amino acid oxidase (CR-LAAO) shows higher affinity for tumor cells, inducing DNA damage and altering gene expression. This enzyme

Area of Science:

  • Biochemistry
  • Molecular Biology
  • Toxicology

Background:

  • Snake venom L-amino acid oxidases (SV-LAAOs) exhibit diverse biological effects with therapeutic potential.
  • CR-LAAO from Calloselasma rhodostoma snake venom possesses known immunomodulatory, antiparasitic, microbicidal, and antitumor properties.

Purpose of the Study:

  • To evaluate the genotoxic potential of CR-LAAO in human peripheral blood mononuclear cells (PBMC) and HepG2 tumor cells.
  • To investigate CR-LAAO's cellular interaction, impact on DNA repair and antioxidant gene expression, and reactive oxygen species (ROS) production.

Main Methods:

  • Flow cytometry to analyze CR-LAAO binding specificity to PBMC and HepG2 cells.
  • Fluorescence assays to measure intracellular ROS levels.
  • RT2 Profiler PCR array to assess the expression of 44 DNA repair and antioxidant pathway genes in HepG2 cells.

Main Results:

  • CR-LAAO demonstrated higher binding affinity for HepG2 tumor cells compared to PBMC.
  • CR-LAAO significantly increased intracellular ROS levels and induced genotoxicity in HepG2 cells, with persistent DNA damage.
  • CR-LAAO modulated the expression of DNA repair genes (e.g., XRCC4, TOPBP1, ERCC6, RAD52, CDKN1) and antioxidant genes (GPX3, MPO) in HepG2 cells.

Conclusions:

  • CR-LAAO exhibits preferential binding to HepG2 tumor cells, potentially mediated by oxidative stress and H2O2 production.
  • The genotoxicity of CR-LAAO in tumor cells is linked to ROS generation and modulation of DNA repair and antioxidant pathways.

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