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High Sensitivity Measurement of Transcription Factor-DNA Binding Affinities by Competitive Titration Using Fluorescence Microscopy
Published on: February 7, 2019
Evaluation of the noncovalent binding interactions between polycyclic aromatic hydrocarbon metabolites and human p53
Yin Wei1, Yuan Lin, Ai-Qian Zhang
1State Key Laboratory of Environmental Chemistry and Ecotoxicology, Research Center for Eco-Environmental Sciences, Chinese Academy of Sciences, P.O. Box 2871, Beijing 100085, China. weiyin@rcees.ac.cn
Abstract:
The binding of reactive polycyclic aromatic hydrocarbon (PAH) metabolites, formed enzymatically, to DNA is a crucial step in PAH carcinogenesis in vivo. We investigated the noncovalent binding interactions between 11 PAH metabolites and human p53 complementary DNA (p53 cDNA) using the fluorescence displacement method and molecular docking analysis. All of the examined metabolites predominantly interacted with p53 cDNA by intercalation instead of groove binding. The dissociation constants ranged from 0.02 to 12.34μM. Of the metabolites tested, 1-hydroxypyrene and 3-hydroxybenzo[a]pyrene showed the strongest binding affinities to DNA, while 2-naphthol was the weakest DNA intercalator. The intercalation of the metabolites was stabilized by stacking the PAH phenyl rings with the DNA base pairs and the formation of hydrogen bonds between the oxide or hydroxyl groups on the metabolites, and DNA bases or backbones. The binding of the metabolites to DNA showed some sequence selectivity. The binding affinities and hydrogen bonds for 3-hydroxybenzo[a]pyrene, benzo[a]pyrene-4,5-dihydroepoxide (BPE) and benzo[a]pyrene-r-7,t-8-dihydrodiol-t-9,10-epoxide (BPDE) differed. It seems that the functional groups on the periphery of the PAH aromatic ring play crucial roles in regulating its binding affinity with DNA. Although it was difficult to determine the correlation between DNA noncovalent binding affinity and carcinogenicity for some of the PAH metabolites, the present study improved our understanding of the formation of PAH metabolite-DNA adducts.
Insights
Polycyclic aromatic hydrocarbon (PAH) metabolites bind to DNA primarily through intercalation, a key step in PAH carcinogenesis. Functional groups on PAH metabolites influence their DNA binding affinity and sequence selectivity.
Area of Science:
- Environmental Chemistry
- Molecular Toxicology
- Biochemistry
Background:
- Polycyclic aromatic hydrocarbons (PAHs) are environmental pollutants linked to cancer.
- Metabolic activation of PAHs generates reactive metabolites that can bind to DNA, initiating carcinogenesis.
- Understanding these interactions is crucial for assessing PAH toxicity.
Purpose of the Study:
- To investigate the noncovalent binding interactions between various polycyclic aromatic hydrocarbon (PAH) metabolites and human p53 complementary DNA (p53 cDNA).
- To determine the binding modes, affinities, and sequence selectivity of these interactions.
- To elucidate the role of functional groups on PAH metabolites in DNA binding.
Main Methods:
- Fluorescence displacement method was employed to study binding.
- Molecular docking analysis was used to predict binding modes and interactions.
- Eleven different PAH metabolites were tested against p53 cDNA.
Main Results:
- All tested PAH metabolites predominantly bound to p53 cDNA via intercalation, not groove binding.
- Dissociation constants (Kd) ranged from 0.02 to 12.34 μM.
- 1-hydroxypyrene and 3-hydroxybenzo[a]pyrene exhibited the strongest binding affinities, while 2-naphthol showed the weakest.
Conclusions:
- PAH metabolite-DNA intercalation is stabilized by π-π stacking and hydrogen bonding.
- Functional groups on the periphery of the PAH aromatic ring significantly influence DNA binding affinity.
- While direct correlation with carcinogenicity is complex, this study enhances understanding of PAH metabolite-DNA adduct formation.
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