| Literature DB >> 31038134 |
Dylan Heussman1, Justin Kittell2, Loni Kringle1, Amr Tamimi1, Peter H von Hippel3, Andrew H Marcus4.
Abstract
The sugar-phosphate backbone of DNA near single-stranded (ss)-double-stranded (ds) junctions likely fluctuates within a broad distribution of conformations to permit the proper binding of genome regulatory proteins that function at these sites. In this work we use absorbance, circular dichroism (CD), and two-dimensional fluorescence spectroscopy (2DFS) to study the local conformations and conformational disorder within chromophore-labeled DNA constructs. These constructs employ dimers of the fluorescent chromophore Cy3 that are site-specifically incorporated into the sugar-phosphate backbones of DNA strands at ss-ds DNA fork junctions. We show that these data can be analyzed to determine the local conformations of the (Cy3)2 dimer, and the degree of conformational disorder. Our analysis employs an essential-state Holstein-Frenkel Hamiltonian model, which takes into account the internal electronic-vibrational motions within each Cy3 chromophore, and the resonant electronic interaction that couples the two chromophores together. Our results suggest that this approach may be applied generally to understand local backbone conformation and conformational disorder at ss-ds DNA fork junctions.Entities:
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Year: 2019 PMID: 31038134 PMCID: PMC7008976 DOI: 10.1039/c8fd00245b
Source DB: PubMed Journal: Faraday Discuss ISSN: 1359-6640 Impact factor: 4.008