Replication through structure-prone DNA – mechanism and impact on genome stability
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AI plain-English summaryHalf of the human genome is made of repetitive DNA sequences that can fold into unusual shapes, and when cells copy these tricky regions, they often make mistakes that trigger neurodegenerative diseases and fuel cancer. This research tackles a fundamental gap in biology: we know that repetitive DNA causes replication errors, but we do not understand the step-by-step mechanics of how those errors happen. The researcher will watch DNA replication happen in a test tube, tracking exactly how secondary structures disrupt unwinding, synthesis, and the molecular machinery that copies DNA. They will then search for the proteins that normally prevent these disruptions. If successful, this work will reveal the basic rules of how cells handle structurally difficult DNA. That knowledge could eventually point toward new targets for drugs that stabilise repetitive regions in diseases like Huntington’s or certain cancers, where repeat instability is a hallmark. But this is fundamentally curiosity-driven science — it asks how a core cellular process works when faced with a common but challenging substrate. Past discoveries in DNA replication mechanics have repeatedly led to unexpected clinical tools, from PCR to chemotherapy drugs, and this project lays the groundwork for similar future applications.
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