Combined genetic and biochemical approaches to uncover and characterize redundant factors involved in late stages of recombinational repair.
In plain English
AI plain-English summaryEvery time a cell divides, its DNA can snap in two—and this project studies how cells fix those breaks without introducing errors. DNA double-strand breaks are among the most dangerous types of genetic damage. They arise from radiation, chemicals, and even normal cell division. Cells have a high-fidelity repair system called homologous recombination, but the final steps—where the broken ends are untangled and sealed—remain poorly understood. The problem is that multiple redundant mechanisms can do the job, making it hard to identify which molecules are essential. The researchers have already found one key player, an enzyme called GEN1, in roundworms and human cells. They now plan genetic screens to uncover other factors that work alongside GEN1, and to understand how it helps both repair DNA and signal that damage has occurred. This is fundamental science. It will not directly change medical practice or industrial processes tomorrow. But understanding how cells preserve genetic integrity is the foundation for grasping why repair fails in cancer and ageing. Similar curiosity-driven work on DNA repair enzymes has, in the past, led directly to drugs like PARP inhibitors now used in cancer therapy.
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