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Scientists capture two DNA strands zipping together for the first time

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Posted on Wednesday 9 September 2026

Researchers have captured the moment two DNA molecules zip together, solving a decades-old mystery.

Scientists at the University of York and the University of Sheffield have imaged two DNA double helices zipping together for the first time. The observation solves a fundamental puzzle in biology: how matching DNA molecules overcome their identical negative charges to draw close together.

Like charges normally repel one another, yet DNA molecules must pair up inside living cells to carry out essential biological processes. This pairing plays a crucial role in genetic recombination, gene silencing and the development of cancer.

Using high-powered atomic force microscopy, researchers observed short DNA fragments matching up with exact precision, groove for groove. Advanced computer simulations revealed that positively charged metal ions act as tiny molecular bridges, nestling inside the grooves to lock the two strands together.

Particularly important

Professor Agnes Noy, from the School of Physics, Engineering and Technology at the University of York, co-led the research. She said: “This discovery could help researchers identify regions of the genome specially involved in DNA pairing. These regions may become particularly important when mutations disrupt normal cellular processes and contribute to cancer.”

The findings confirm a twenty-year-old theory known as the “DNA zipper” model, originally proposed by Professor Alexey Kornyshev from Imperial College London and his collaborators. The model suggested that surrounding salt ions create alternating charge patterns, allowing DNA molecules to line up like interlocking spiral staircases.

To test this, the team used atomic force microscopy to scan DNA samples and build topographical maps. At the same time, detailed computer models tracked the movement of individual atoms and ions. They discovered that double-charged metal ions act like two charged arms, holding both DNA strands simultaneously across the gap.

Directly visualise

Dr Thomas Catley, co-lead author from the School of Chemical Materials and Biological Engineering at the University of Sheffield, said: “It was incredible to be able to directly visualise the long-hypothesised mechanism for the first time. The advanced imaging techniques at our disposal are allowing us to uncover these key DNA interactions which have implications in many key cellular processes.”

Dr Victor Velasco-Berrelleza from the University of Sheffield, who performed the simulations, added: “Microscopy shows us what happens, but the simulations allows us to uncover the molecular mechanism behind it.”

The team also discovered that DNA pairing is not uniform. Certain DNA sequences form much stronger contacts than others, creating specific hotspots where two helices are particularly likely to align. Beyond cancer research, these programmable interactions could eventually help engineers design custom DNA structures for future biotechnology applications.

The study, Imaging and mechanism of DNA–DNA recognition mediated by divalent ions, is published in the journal Nucleic Acids Research.

 

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