Direct evidence and quantification of homologous recognition between DNA duplexes
Abstract
Stretches of double-stranded DNA sharing the same sequence can recognize each other in cells. This phenomenon, known as homologous recognition, is essential for DNA recombination and repair. Yet, its mechanism remains debated, with purely physical interactions proposed as a contributing factor. Here, we use a minimal DNA nanosensor to quantify homologous pairwise interactions with exquisite precision. We find that homology enhances the duplex–duplex affinity induced by physiological divalent cations and measure the homology-driven recognition free energy as ∼ − 0.01 kcal / mol per base pair. This affinity substantially enhances coalignment of homologous DNA in the confined geometry of the nanosensor, which mimics physical effects of concentrated biological environments. We introduce a quantitative electrostatic framework that attributes this emergent behavior to coherent charge distributions unique to homologous DNA. Our findings provide compelling evidence in support of purely physical sequence-specific interactions between intact double-stranded DNA, which may bear biological relevance for homologous recombination.
Article Details
Journal Info
Proceedings of the National Academy of Sciences
National Academy of Sciences
Authors (10)
Andrew Stannard
Department of Chemistry, Imperial College London
Ehud Haimov
Department of Chemistry, Imperial College London
Jonathan G. Hedley
Department of Engineering Science, University of Oxford
Yaxuan Xiao
Department of Chemistry, Imperial College London
Marco Di Antonio
Department of Chemistry, Imperial College London
Gleb Oshanin
Laboratoire de Physique Théorique de la Matière Condensée (UMR CNRS7600), Sorbonne Université/CNRS
Claudia Danilowicz
Department of Physics, Harvard University
Mara Prentiss
Department of Physics, Harvard University
Lorenzo Di Michele
Department of Chemical Engineering and Biotechnology, University of Cambridge, Philippa Fawcett Drive, Cambridge CB3 0AS, U.K.
Alexei A. Kornyshev
Department of Chemistry, Molecular Sciences Research Hub