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Line Shape Analysis of Dynamic NMR Spectra for Characterizing Coordination Sphere Rearrangements at a Chiral Rhenium Polyhydride Complex
Published on: July 27, 2022
Aromatic ring transforms DNA binding modes of an octahedral rhodium complex.
Guðfríður Björg Möller1, Micah J McCauley1, Liam J Price1
1Department of Physics, Northeastern University, Boston, Massachusetts.
Rhodium complexes with phenanthrene diimine quinone (phi) and 5,6-chrysene quinone diimine (chrysi) ligands show distinct DNA binding. Both intercalate into DNA, but chrysi preferentially binds mismatches, while phi exhibits faster kinetics.
Area of Science:
- Coordination chemistry
- Biophysical chemistry
- Molecular biology
Background:
- Octahedral rhodium complexes can scaffold DNA binding ligands.
- Phenanthrene diimine quinone (phi) and 5,6-chrysene quinone diimine (chrysi) are two such ligands with differing structures.
- Previous studies suggested different DNA binding modes for phi and chrysi.
Purpose of the Study:
- To compare the DNA binding characteristics of rhodium complexes with phi and chrysi ligands.
- To investigate the binding mechanisms of these complexes to both matched and mismatched DNA.
- To elucidate the role of ligand structure in DNA interaction.
Main Methods:
- Dual beam optical tweezers to force-unfold DNA hairpins with mismatches.
- Force-extension and constant force measurements on long, fully paired DNA.
- Comparison of binding affinity and kinetics between phi and chrysi complexes.
Main Results:
- chrysi stabilizes base pair mismatches, supporting preferential minor groove binding.
- Both phi and chrysi complexes intercalate into double-stranded DNA.
- chrysi shows higher binding affinity, while phi has faster binding kinetics, suggesting major groove interaction.
Conclusions:
- Rhodium complexes with phi and chrysi ligands exhibit complex DNA binding behaviors.
- chrysi demonstrates a dual binding mode, interacting with mismatches and intercalating into DNA.
- Ligand structure significantly influences DNA binding affinity and kinetics, with implications for drug design.
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