Mechanistic understanding of the reading and writing of DNA methylation
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AI plain-English summaryA single misplaced chemical tag on a strand of DNA can silence a tumour-suppressing gene or activate a cancer-causing one, yet scientists have never seen exactly how the proteins that add or remove these tags do their work inside a living cell. DNA methylation—the attachment of small chemical groups to specific DNA bases—acts as a cellular dimmer switch, turning genes up or down and helping package DNA into tight bundles. When this process goes wrong, it contributes to cancer, developmental disorders, and other diseases. Current understanding comes from studies using short DNA fragments or isolated protein pieces, which miss the crucial context of the nucleosome—the spool-like structure around which DNA is wound in cells. This project will build chemically modified nucleosomes that mimic real DNA methylation states, then use cryo-electron microscopy to capture snapshots of the entire methylation machinery in action. The researcher will track how enzymes first recognise their target, load onto the correct site, catalyse the methylation reaction, and later maintain the pattern through cell division. This is fundamental science. It will not produce a drug or diagnostic tomorrow. But understanding the molecular choreography of DNA methylation—how it is written, read, and maintained—could eventually reveal why it goes awry in disease and point to new ways to intervene.
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