Related Experiment Video
Updated: Jul 29, 2026

A General Method for Detecting Nitrosamide Formation in the In Vitro Metabolism of Nitrosamines by Cytochrome P450s
Published on: September 25, 2017
Molecular topology of polycyclic aromatic carcinogens determines DNA adduct conformation: a link to tumorigenic
C H Lin1, X Huang, A Kolbanovskii
1Cellular Biochemistry & Biophysics Program, Memorial Sloan-Kettering Cancer Center, New York, NY 10021, USA.
Abstract:
We report below on the solution structures of stereoisomeric "fjord" region trans-anti-benzo[c]phenanthrene-N2-guanine (designated (BPh)G) adducts positioned opposite cytosine within the (C-(BPh)G-C).(G-C-G) sequence context. We observe intercalation of the phenanthrenyl ring with stereoisomer-dependent directionality, without disruption of the modified (BPh)G.C base-pair. Intercalation occurs to the 5' side of the modified strand for the 1S stereoisomeric adduct and to the 3' side for the 1R stereoisomeric adduct, with the S and R-trans-isomers related to one another by inversion in a mirror plane at all four chiral carbon atoms on the benzylic ring. Intercalation of the fjord region BPh ring into the helix without disruption of the modified base-pair is achieved through buckling of the (BPh)G.C base-pair, displacement of the linkage bond from the plane of the (BPh)G base, adaptation of a chair pucker by the BPh benzylic ring and the propeller-like deviation from planarity of the BPh phenanthrenyl ring. It is noteworthy that intercalation without base-pair disruption occurs from the minor groove side for S and R-trans-anti BPh-N2-guanine adducts opposite C, in contrast to our previous demonstration of intercalation without modified base-pair disruption from the major groove side for S and R-trans-anti BPh-N6-adenine adducts opposite T. Further, these results on fjord region 1S and 1R-trans-anti (BPh)G adducts positioned opposite C are in striking contrast to earlier research with "bay" region benzo[a]pyrene-N2-guanine (designated (BP)G) adducts positioned opposite cytosine, where 10S and 10R-trans-anti stereoisomers were positioned with opposite directionality in the minor groove without modified base-pair disruption. They also are in contrast to the 10S and 10R-cis-anti stereoisomers of (BP)G adducts opposite C, where the pyrenyl ring is intercalated into the helix with directionality, but the modified base and its partner on the opposite strand are displaced out of the helix. These results are especially significant given the known greater tumorigenic potential of fjord region compared to bay region polycyclic aromatic hydrocarbons. The tumorigenic potential has been linked to repair efficiency such that bay region adducts can be readily repaired while their fjord region counterparts are refractory to repair. Our structural results propose a link between DNA adduct conformation and repair-dependent mutagenic activity, which could ultimately translate into structure-dependent differences in tumorigenic activities. We propose that the fjord region minor groove-linked BPh-N2-guanine and major groove-linked BPh-N6-adenine adducts are refractory to repair based on our observations that the phenanthrenyl ring intercalates into the helix without modified base-pair disruption. The helix is therefore minimally perturbed and the phenanthrenyl ring is not available for recognition by the repair machinery. By contrast, the bay region BP-N2-G adducts are susceptible to repair, since the repair machinery can recognize either the pyrenyl ring positioned in the minor groove for the trans-anti groove-aligned stereoisomers, or the disrupted modified base-pair for the cis-anti base-displaced intercalated stereoisomers.
Insights
Stereoisomeric benzo[c]phenanthrene-N2-guanine adducts intercalate into DNA without base-pair disruption, unlike bay region adducts. This structural difference may explain why fjord region adducts are refractory to repair and linked to higher tumorigenic potential.
Area of Science:
- Structural Biology
- Chemical Biology
- DNA Damage and Repair
Background:
- Polycyclic aromatic hydrocarbons (PAHs) are environmental mutagens that form DNA adducts.
- Fjord region PAHs, like benzo[c]phenanthrene (BPh), are more tumorigenic than bay region PAHs, like benzo[a]pyrene (BP).
- Differences in DNA adduct structure are hypothesized to influence repair efficiency and mutagenicity.
Purpose of the Study:
- To determine the solution structures of stereoisomeric fjord region trans-anti-benzo[c]phenanthrene-N2-guanine ((BPh)G) adducts opposite cytosine.
- To compare the structural consequences of fjord region adducts with previously studied bay region adducts.
- To propose a link between DNA adduct conformation, repair efficiency, and tumorigenic potential.
Main Methods:
- Nuclear Magnetic Resonance (NMR) spectroscopy was used to determine the three-dimensional structures of DNA adducts in solution.
- Analysis focused on the intercalation mode, base-pair integrity, and stereoisomer-dependent directionality of the adducts.
- Comparison of structural data with existing knowledge on bay region adducts and their repair characteristics.
Main Results:
- Stereoisomeric fjord region (BPh)G adducts intercalate into the DNA helix without disrupting the modified base pair.
- Intercalation directionality (5' vs. 3' side) depends on the stereoisomer (1S vs. 1R).
- Fjord region adducts intercalate from the minor groove, contrasting with major groove intercalation of adenine adducts and minor groove positioning of bay region adducts.
Conclusions:
- The intercalation of fjord region (BPh)G adducts without base-pair disruption likely renders them refractory to DNA repair machinery.
- This lack of repair, coupled with their structural conformation, may explain the higher tumorigenic potential of fjord region PAHs.
- DNA adduct structure significantly influences repair pathways and subsequent mutagenic/carcinogenic outcomes.
More Related Videos
Related Concept Videos
Mutations
DNA Topoisomerases
Types and Mechanism of action
Topoisomerases are divided into two main types. Type I...
Cancer Prevention
Some...
Mutations
Chromosomal Alterations Are Large-Scale Mutations
While point mutations are changes in a single nucleotide in...
Mutagenicity and Carcinogenicity
Spontaneous and Induced Mutations

