The broccoli-born isothiocyanate sulforaphane impairs nucleotide excision repair: XPA as one potential target

Ann Liza Piberger1, Beate Köberle, Andrea Hartwig

  • 1Department of Food Chemistry and Toxicology, Institute of Applied Bioscience, Karlsruhe Institute of Technology (KIT), Adenauerring 20a, 76131, Karlsruhe, Germany.

Archives of Toxicology
|December 20, 2013
PubMed

Insights

Sulforaphane (SFN), found in broccoli, may impair DNA repair by releasing zinc from the xeroderma pigmentosum A (XPA) protein. This interference with DNA repair processes could potentially affect genomic stability.

Area of Science:

  • Biochemistry
  • Molecular Biology
  • Genetics

Background:

  • Sulforaphane (SFN) is a broccoli-derived compound linked to anticarcinogenic effects via the nrf2/Keap1/ARE pathway.
  • SFN can induce zinc release from Keap1, prompting investigation into its interaction with other zinc-binding proteins, including those involved in DNA repair.

Purpose of the Study:

  • To investigate whether SFN interferes with zinc-binding structures crucial for DNA repair.
  • To determine the impact of SFN on the repair of specific DNA adducts and its effect on cellular cytotoxicity.

Main Methods:

  • Assessed SFN-induced zinc release from a peptide mimicking the XPA zinc-binding domain.
  • Investigated SFN's effect on the repair of (+)-anti-benzo[a]pyrene 7,8-diol-9,10-epoxide ((+)-anti-BPDE) DNA adducts in HCT 116 cells.
  • Evaluated SFN's impact on (+)-anti-BPDE-induced cytotoxicity in XPA-dependent XP12RO cells and compared repair inhibition in p53-proficient and deficient cells.

Main Results:

  • SFN induced zinc release from the XPA peptide model starting at 50 μM.
  • SFN inhibited the early phase (first 12 hours) of (+)-anti-BPDE DNA adduct repair in a dose-dependent manner, starting at 1 μM.
  • SFN increased (+)-anti-BPDE-induced cytotoxicity in an XPA-dependent manner and did not affect p53-proficient/deficient cells differently.

Conclusions:

  • SFN interferes with zinc binding in the XPA protein, potentially inhibiting nucleotide excision repair.
  • SFN impairs early-stage DNA repair and enhances cytotoxicity of specific DNA adducts in an XPA-dependent manner.
  • The findings suggest SFN may compromise genomic stability by inhibiting essential DNA repair mechanisms.

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