Abstract
<jats:title>Abstract</jats:title> <jats:p>Holliday junctions (HJs) are key intermediates of homologous recombination and fundamental building blocks in DNA nanotechnology. Although the canonical antiparallel stacked-X conformation has been extensively characterized by X-ray crystallography, whether parallel HJ conformations exist in aqueous solution remains unresolved. Here, we address this question using extensive atomistic molecular dynamics (MD) simulations and replica-exchange umbrella sampling (REUS) free-energy calculations. Starting from canonical antiparallel HJs, standard MD simulations occasionally revealed spontaneous transitions to parallel conformations on the microsecond timescale without disrupting the DNA duplexes or passing through an open junction intermediate. REUS free-energy profiles confirmed the antiparallel state as the global minimum but also identified the parallel conformation as a well-defined local minimum, indicating it is thermodynamically metastable despite an estimated solution population below 1%. The combination of low equilibrium occupancy, microsecond interconversion dynamics, and the surprisingly close structural similarity between antiparallel and parallel junctions provides a plausible explanation for the lack of direct experimental detection. We further found that the free-energy landscape is only weakly affected by branching-point sequence and salt concentration. These results reconcile the apparent absence of experimental evidence for parallel HJs with their structural feasibility in solution and offer a fresh perspective on the historical debate.</jats:p> <jats:sec> <jats:title>Graphical abstract</jats:title> <jats:fig id="ufig1" position="float" orientation="portrait" fig-type="figure"> <jats:graphic xmlns:xlink="http://www.w3.org/1999/xlink" xlink:href="737670v1_ufig1" position="float" orientation="portrait"/> </jats:fig> </jats:sec>