Planar polarity as a model for understanding self-organisation from molecular to tissue scales
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AI plain-English summaryA fruit fly wing cell coordinates with its neighbours to point its hairs in the same direction, and researchers want to know exactly how that happens at the level of individual molecules. This matters because one of the biggest unanswered questions in developmental biology is how nanometre-scale molecular interactions produce tissue-wide patterns millimetres across. The fly wing’s planar polarity—the coordinated alignment of cells—offers a simple, accessible model to crack that problem. Decades of work have identified the key proteins, but no one has shown how their molecular interactions actually drive the pattern. The team will use multicolour single molecule microscopy in living fly wings and reconstruct the same protein behaviours in cultured cells. They will track three processes: how proteins break symmetry at the nanometre scale, how sorting mechanisms organise them into polarised domains, and how cells segregate those domains to opposite edges. This is fundamental science. It will not produce a drug or a device. But understanding self-organisation from molecules to tissues could eventually inform synthetic biology, tissue engineering, or the design of materials that assemble themselves—outcomes that have emerged unpredictably from past work on pattern formation.
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