Elucidation of molecular mechanisms, pathways, and diseases modulated by arsenicals through toxogenomics and

Seema Zargar1, Nojood Altwaijry1, Humidah Alanazi1

  • 1Department of Biochemistry, College of Science, King Saud University, Riyadh 11451, Saudi Arabia.

Insights

Inorganic arsenic compounds are potent carcinogens. This study used toxogenomics to identify key genes and pathways involved in arsenic-induced carcinogenicity, particularly in liver cancer, and identified regulating microRNAs.

Area of Science:

  • Toxicology
  • Genomics
  • Cancer Research

Background:

  • Arsenic compounds, particularly inorganic forms, are known human carcinogens.
  • Understanding the molecular mechanisms of arsenic-induced carcinogenicity is crucial for risk assessment and prevention.

Purpose of the Study:

  • To explore the molecular mechanisms of carcinogenicity induced by arsenicals using toxogenomics and multi-omics analysis.
  • To identify key genes, pathways, and microRNAs involved in arsenic-induced cancer, with a focus on hepatocellular carcinoma.

Main Methods:

  • Comparative toxogenomics and multi-omics analysis.
  • Utilized ProTox II for toxicity prediction and TCGA pan-cancer data for gene alteration analysis.
  • Gene Set Enrichment Analysis (GSEA) and microRNA-target interaction network prediction.

Main Results:

  • Sodium arsenite and arsenate were identified as highly toxic, interacting with genes like HMOX1, CAT, and NFE2L2.
  • 46% of hepatocellular carcinoma patients showed alterations in these key genes, though survival impact was insignificant.
  • Enrichment analysis revealed involvement of pathways such as G2M checkpoint, apoptosis, and inflammatory responses, regulated by specific microRNAs like miR-21-3p.

Conclusions:

  • Arsenicals induce carcinogenicity through complex molecular mechanisms involving specific gene expression alterations and pathway dysregulation.
  • Key genes and pathways identified provide insights into arsenic-induced hepatocellular carcinoma development.
  • The study highlights the role of specific microRNAs in regulating these arsenic-affected pathways, offering potential targets for future research.