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Influence of Benzo(a)pyrene on Different Epigenetic Processes
Bożena Bukowska1, Paulina Sicińska1
1Department of Biophysics of Environmental Pollution, Faculty of Biology and Environmental Protection, University of Lodz, Pomorska Str. 141/143, 90-236 Lodz, Poland.
Abstract:
Epigenetic changes constitute one of the processes that is involved in the mechanisms of carcinogenicity. They include dysregulation of DNA methylation processes, disruption of post-translational patterns of histone modifications, and changes in the composition and/or organization of chromatin. Benzo(a)pyrene (BaP) influences DNA methylation and, depending on its concentrations, as well as the type of cell, tissue and organism it causes hypomethylation or hypermethylation. Moreover, the exposure to polyaromatic hydrocarbons (PAHs), including BaP in tobacco smoke results in an altered methylation status of the offsprings. Researches have indicated a potential relationship between toxicity of BaP and deregulation of the biotin homeostasis pathway that plays an important role in the process of carcinogenesis. Animal studies have shown that parental-induced BaP toxicity can be passed on to the F1 generation as studied on marine medaka (Oryzias melastigma), and the underlying mechanism is likely related to a disturbance in the circadian rhythm. In addition, ancestral exposure of fish to BaP may cause intergenerational osteotoxicity in non-exposed F3 offsprings. Epidemiological studies of lung cancer have indicated that exposure to BaP is associated with changes in methylation levels at 15 CpG; therefore, changes in DNA methylation may be considered as potential mediators of BaP-induced lung cancer. The mechanism of epigenetic changes induced by BaP are mainly due to the formation of CpG-BPDE adducts, between metabolite of BaP-BPDE and CpG, which leads to changes in the level of 5-methylcytosine. BaP also acts through inhibition of DNA methyltransferases activity, as well as by increasing histone deacetylases HDACs, i.e., HDAC2 and HDAC3 activity. The aim of this review is to discuss the mechanism of the epigenetic action of BaP on the basis of the latest publications.
Insights
Benzo(a)pyrene (BaP) exposure causes epigenetic changes, including DNA methylation alterations, impacting carcinogenicity. These changes can be inherited across generations, potentially mediating BaP-induced lung cancer.
Area of Science:
- Environmental Epigenetics
- Carcinogenesis Mechanisms
- Toxicology
Background:
- Epigenetic alterations, including DNA methylation and histone modifications, are crucial in cancer development.
- Benzo(a)pyrene (BaP), a polycyclic aromatic hydrocarbon found in tobacco smoke, is a known carcinogen that influences epigenetic processes.
- BaP exposure can lead to altered DNA methylation patterns, potentially affecting gene expression and contributing to carcinogenesis.
Purpose of the Study:
- To review the mechanisms by which Benzo(a)pyrene (BaP) induces epigenetic changes.
- To discuss the role of these epigenetic modifications in carcinogenicity and intergenerational toxicity.
- To highlight the association between BaP exposure, DNA methylation, and lung cancer risk.
Main Methods:
- Review of recent scientific literature on BaP's epigenetic effects.
- Analysis of studies investigating DNA methylation, histone modifications, and chromatin organization.
- Examination of animal and epidemiological data linking BaP exposure to epigenetic changes and cancer.
Main Results:
- BaP induces both hypomethylation and hypermethylation of DNA, depending on concentration and cell type.
- BaP exposure can alter the methylation status of offspring, indicating transgenerational effects.
- BaP-induced epigenetic changes, such as CpG-BPDE adducts and altered histone deacetylase activity, are linked to lung cancer.
- Disturbances in biotin homeostasis and circadian rhythm may mediate BaP toxicity across generations.
Conclusions:
- Epigenetic modifications are key mechanisms in BaP-induced carcinogenicity.
- BaP exposure can lead to heritable epigenetic changes, impacting non-exposed offspring.
- DNA methylation changes serve as potential mediators of BaP-associated lung cancer.
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