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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.
Abstract:
Snake venom L-amino acid oxidases (SV-LAAOs) are enzymes of great interest in research due to their many biological effects with therapeutic potential. CR-LAAO, an L-amino acid oxidase from Calloselasma rhodostoma snake venom, is a well described SV-LAAO with immunomodulatory, antiparasitic, microbicidal, and antitumor effects. In this study, we evaluated the genotoxic potential of this enzyme in human peripheral blood mononuclear cells (PBMC) and HepG2 tumor cells, as well as its interaction with these cells, its impact on the expression of DNA repair and antioxidant pathway genes, and reactive oxygen species (ROS)-induced intracellular production. Flow cytometry analysis of FITC-labelled CR-LAAO showed higher specificity of interaction with HepG2 cells than PBMC. Moreover, CR-LAAO significantly increased intracellular levels of ROS only in HepG2 tumor cells, as assessed by fluorescence. CR-LAAO also induced genotoxicity in HepG2 cells and PBMC after 4 h of stimulus, with DNA damages persisting in HepG2 cells after 24 h. To investigate the molecular basis underlying the genotoxicity attributed to CR-LAAO, we analyzed the expression profile (mRNA levels) of 44 genes involved in DNA repair and antioxidant pathways in HepG2 cells by RT2 Profiler polymerase chain reaction array. CR-LAAO altered the tumor cell expression of DNA repair genes, with two downregulated (XRCC4 and TOPBP1) and three upregulated (ERCC6, RAD52 and CDKN1) genes. In addition, two genes of the antioxidant pathway were upregulated (GPX3 and MPO), probably in an attempt to protect tumor cells from oxidative damage. In conclusion, our data suggest that CR-LAAO possesses higher binding affinity to HepG2 tumor cells than to PBMC, its genotoxic mechanism is possibly caused by the oxidative stress related to the production of H2O2, and is also capable of modulating genes related to the DNA repair system and antioxidant pathways.
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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