Mechanisms of DNA interstrand crosslink repair in humans.
In plain English
AI plain-English summaryEvery time a cell divides, it must repair a specific type of DNA damage—a chemical crosslink that glues the two strands of the double helix together—or risk triggering cancer. This project unpacks the molecular machinery that human cells use to find and fix these interstrand crosslinks (ICLs). When that repair system fails, it causes Fanconi Anaemia, a condition that dramatically raises cancer risk. Conversely, cancer doctors deliberately create ICLs with chemotherapy drugs, but tumours often become resistant by repairing the damage too efficiently. The researcher has already identified the proteins that first detect ICLs and has imaged their structure using cryo-electron microscopy. Over the next five years, they will watch these repair factors in action at the single-molecule level, determining exactly how they are activated and recruited to the damage site. This is fundamental science—there is no immediate clinical application. But understanding the precise choreography of ICL repair could eventually allow clinicians to block the pathway in resistant tumours, making chemotherapy more effective, or to boost it in patients with inherited repair defects. Similar mechanistic work on other DNA repair pathways has already led to targeted cancer drugs.
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