Molecular signatures of N-nitroso compounds in Caco-2 cells: implications for colon carcinogenesis

Dennie G A J Hebels1, Danyel G J Jennen, Jos C S Kleinjans

  • 1Department of Health Risk Analysis and Toxicology, Maastricht University, 6200 MD Maastricht, The Netherlands. d.hebels@grat.unimaas.nl

Insights

N-nitroso compounds (NOC) impact colon cancer risk. Nitrosamines, unlike nitrosamides, significantly alter gene expression, affecting cell cycle, apoptosis, and inflammation pathways in human colon cells.

Area of Science:

  • Molecular toxicology
  • Gastrointestinal oncology
  • Genomics

Background:

  • N-nitroso compounds (NOC) are genotoxic and carcinogenic, potentially contributing to human cancers.
  • The gastrointestinal tract is a primary exposure route for NOC via endogenous nitrosation.
  • Understanding NOC's genomic impact is crucial for colon carcinogenesis research.

Purpose of the Study:

  • To investigate the transcriptomic effects of specific nitrosamides and nitrosamines in a human colon cell line.
  • To determine if NOC exposure targets genetic processes relevant to colon cancer development.
  • To identify specific pathways modulated by NOC exposure in Caco-2 cells.

Main Methods:

  • Exposure of Caco-2 cells to genotoxic concentrations of two nitrosamides (MNNG, MNU) and four nitrosamines (NDEA, NDMA, NPIP, NPYR).
  • Transcriptomic analysis using Gene Ontology, consensus motif, and biological pathway analysis.
  • Flow cytometry to support findings on cell cycle regulation and apoptosis.

Main Results:

  • Nitrosamines, but not nitrosamides, significantly altered the transcriptomic profile of Caco-2 cells.
  • Nitrosamine exposure modulated cell cycle regulation, apoptosis, oxidative stress, and inflammation pathways.
  • NDEA, NPIP, and NPYR notably affected developmental pathways, implicated in carcinogenesis.

Conclusions:

  • Nitrosamine exposure induces significant genomic alterations in human colon cells.
  • Modulated pathways suggest increased oxidative stress, inflammation, and potential disruption of developmental processes.
  • These findings link nitrosamine exposure to colon cancer risk through specific genetic pathway modifications.

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