Probing DNA structural heterogeneity by identifying conformational subensembles of a bicovalently bound cyanine dye

Author:

Barclay Matthew S.1ORCID,Chowdhury Azhad U.1ORCID,Biaggne Austin1ORCID,Huff Jonathan S.1ORCID,Wright Nicholas D.1ORCID,Davis Paul H.12ORCID,Li Lan12ORCID,Knowlton William B.13ORCID,Yurke Bernard13ORCID,Pensack Ryan D.1ORCID,Turner Daniel B.1ORCID

Affiliation:

1. Micron School for Materials Science and Engineering, Boise State University 1 , Boise, Idaho 83725, USA

2. Center for Advanced Energy Studies 2 , Idaho Falls, Idaho 83401, USA

3. Department of Electrical and Computer Engineering, Boise State University 3 , Boise, Idaho 83725, USA

Abstract

DNA is a re-configurable, biological information-storage unit, and much remains to be learned about its heterogeneous structural dynamics. For example, while it is known that molecular dyes templated onto DNA exhibit increased photostability, the mechanism by which the structural dynamics of DNA affect the dye photophysics remains unknown. Here, we use femtosecond, two-dimensional electronic spectroscopy measurements of a cyanine dye, Cy5, to probe local conformations in samples of single-stranded DNA (ssDNA–Cy5), double-stranded DNA (dsDNA–Cy5), and Holliday junction DNA (HJ–DNA–Cy5). A line shape analysis of the 2D spectra reveals a strong excitation–emission correlation present in only the dsDNA–Cy5 complex, which is a signature of inhomogeneous broadening. Molecular dynamics simulations support the conclusion that this inhomogeneous broadening arises from a nearly degenerate conformer found only in the dsDNA–Cy5 complex. These insights will support future studies on DNA’s structural heterogeneity.

Funder

U.S. Department of Energy

Office of Naval Research

Publisher

AIP Publishing

Subject

Physical and Theoretical Chemistry,General Physics and Astronomy

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