3’-end homeostasis of DNA replication forks in health and disease
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AI plain-English summaryEvery time a cell divides, it must copy its entire genome without breaking the DNA—and a newly discovered balancing act inside the replication machinery determines whether that process succeeds or ends in catastrophic collapse. This research addresses a fundamental gap in understanding how cells prevent their DNA from shattering during replication. The key insight is “3’-end homeostasis”: cells must keep the number of exposed DNA ends below a critical threshold, because too many ends overwhelm the protective factors that normally shield them from enzymatic attack. When this balance fails, replication forks collapse irreversibly, leading to cell death or, if the cell survives with damaged DNA, cancer. The work is fundamental science. It does not promise an immediate treatment or diagnostic. But it directly explains why certain cancer drugs—such as ATR inhibitors, which force cells to fire too many replication origins—kill tumour cells, and why some cancers become resistant to those drugs. A deeper understanding of 3’-end homeostasis could eventually guide the design of more precise therapies that push cancer cells past the collapse threshold while sparing healthy tissue. Past discoveries in DNA replication and repair have already transformed cancer treatment; this line of inquiry could extend that track record.
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