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Published on: June 6, 2017
Benzo[a]pyrene-induced cell cycle arrest in HepG2 cells is associated with delayed induction of mitotic instability
Dimitris Stellas1, Vassilis L Souliotis1, Margarita Bekyrou1
1Institute of Biology, Medicinal Chemistry and Biotechnology, National Hellenic Research Foundation, Athens, Greece.
Abstract:
The environmental carcinogen benzo[a]pyrene (B[a]P) after being metabolised by cytochrome P450 enzymes forms DNA adducts. This abnormal situation induces changes in the cell cycle, DNA damage, chromosomal and mitotic aberrations, all of which may be related to carcinogenesis. In order to further investigate the mechanistic basis of these effects, HepG2 cells were treated with 3μM B[a]P for various time periods, followed by further incubation in the absence of B[a]P for up to 192h. B[a]P treatment led initially to S-phase arrest followed by recovery and subsequent induction of G2/M arrest, indicating activation of the corresponding DNA damage checkpoints. Immunofluorescence-based studies revealed accumulation of B[a]P-induced DNA adducts and chromosomal damage which persisted beyond mitosis and entry into a new cycle, thus giving rise to a new round of activation of the S-phase checkpoint. Prolonged further cultivation of the cells in the absence of B[a]P resulted in high frequencies of various abnormal mitotic events. Abrogation of the B[a]P-induced S-phase arrest by the Chk1 inhibitor UCN-01 triggered a strong apoptotic response but also dramatically decreased the frequency of mitotic abnormalities in the surviving cells, suggesting that events occurring during S-phase arrest contribute to the formation of delayed mitotic damage. Overall, our data demonstrate that, although S-phase arrest serves as a mechanism by which the cells reduce their load of genetic damage, its prolonged activation may also have a negative impact on the balance between cell death and heritable genetic damage.
Insights
Environmental carcinogen benzo[a]pyrene (B[a]P) causes DNA damage and cell cycle arrest. Prolonged S-phase arrest, while reducing damage, can lead to mitotic abnormalities and impact cell death balance.
Area of Science:
- Environmental toxicology
- Molecular carcinogenesis
- Cellular biology
Background:
- Benzo[a]pyrene (B[a]P) is an environmental carcinogen metabolized to DNA adducts.
- B[a]P-induced DNA damage can lead to cell cycle changes, DNA damage, and chromosomal aberrations, potentially driving carcinogenesis.
Purpose of the Study:
- To investigate the mechanistic basis of B[a]P's effects on cell cycle and DNA integrity.
- To elucidate the role of S-phase arrest in B[a]P-induced cellular damage and mitotic abnormalities.
Main Methods:
- HepG2 cells were treated with B[a]P and monitored over time.
- Immunofluorescence was used to detect DNA adducts and chromosomal damage.
- Cell cycle progression and mitotic events were analyzed.
- The Chk1 inhibitor UCN-01 was used to abrogate S-phase arrest.
Main Results:
- B[a]P induced sequential S-phase and G2/M arrest, indicating DNA damage checkpoint activation.
- Persistent B[a]P-DNA adducts and chromosomal damage were observed, reactivating the S-phase checkpoint.
- Prolonged B[a]P exposure led to increased mitotic abnormalities.
- Inhibiting S-phase arrest with UCN-01 reduced mitotic abnormalities but increased apoptosis.
Conclusions:
- S-phase arrest is a cellular mechanism to mitigate B[a]P-induced genetic damage.
- Prolonged S-phase arrest can paradoxically contribute to delayed mitotic damage.
- The balance between cell death and heritable genetic damage is influenced by S-phase arrest duration.
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