Molecular mechanisms of eukaryotic ribosome assembly
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AI plain-English summaryA single mutated cell can outcompete its healthy neighbours and spark a blood cancer—but how it does so remains unknown. This project tackles that question by studying Shwachman-Diamond syndrome (SDS), a rare genetic disorder that dramatically raises the risk of leukaemia. Previous work by this lab showed that SDS disrupts the assembly of ribosomes—the molecular machines that build every protein in a cell. Yet the detailed mechanics of ribosome assembly, and exactly how faulty assembly drives cancerous cell competition, are still a black box. Two obstacles block progress: no high-resolution structures exist for the intermediate stages of human ribosome formation, and it is extremely difficult to track individual blood stem cell clones as they compete inside a living patient. The researchers will use advanced imaging to solve the structures of key ribosome assembly intermediates. They will also exploit naturally occurring mutations in blood stem cells as built-in barcodes, allowing them to watch how defective ribosome assembly gives certain clones a competitive edge. This is fundamental science. It will not yield a new drug or diagnostic tomorrow. But understanding the basic rules of cell competition and ribosome biology could eventually reveal why some mutations drive cancer while others do not—and point to entirely new ways to intervene.
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