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Published on: November 10, 2016
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.
Abstract:
The isothiocyanate sulforaphane (SFN), the major hydrolysis product of glucosinolates present in broccoli, has frequently been proposed to exert anticarcinogenic properties, mainly due to the induction of the nrf2/Keap1/ARE-signaling pathway. As potential underlying mechanism, a SFN-dependent zinc release from Keap1, the negative regulator of nrf2, has been described. This raises the question whether SFN is able to interfere with other zinc binding structures as well, for example those essential for DNA repair. Within this study, a SFN-induced deliberation of zinc from a synthesized peptide resembling the zinc binding domain of the xeroderma pigmentosum A (XPA) protein was observed starting at 50 μM SFN. Since XPA is absolutely required for nucleotide excision repair, the impact of SFN on the repair of (+)-anti-benzo[a]pyrene 7,8-diol-9,10-epoxide ((+)-anti-BPDE)-induced DNA adducts in HCT 116 cells was investigated. While preincubation with SFN did not affect initial lesion levels, a dose-dependent repair inhibition of (+)-anti-BPDE-induced DNA damage during the first 12 h after lesion induction was observed, starting at 1 μM SFN. In contrast, the later phase of DNA repair was not impaired by SFN. In support of an inactivation of XPA also in cells, SFN increased the (+)-anti-BPDE-induced cytotoxicity XPA dependently in XP12RO cells. Comparison of p53-proficient and p53-deficient cells revealed no difference in SFN-induced DNA repair inhibition, indicating that p53 is no cellular target of SFN. Since DNA repair processes are required to maintain DNA integrity, the presented data suggest a potential impairment of genomic stability by SFN.
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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