Three-dimensional proteomics: Mapping the geometry of large protein assemblies using cross-linking, mass spectrometry, and bioinformatics.
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AI plain-English summaryProteins often work in large, multi-part teams, but scientists struggle to map the physical arrangement of these teams, especially when they are large, fragile, or insoluble. This project aims to turn a technique called 3D proteomics into a reliable, automated tool for doing exactly that. The method works by chemically stitching neighbouring proteins together, then using mass spectrometry to identify which proteins were linked, revealing their spatial geometry. The researchers have already generated unprecedented amounts of this cross-linking data and automated its interpretation. They now plan to build a general platform for analysing protein complexes both in test tubes and inside living cells. As a final test, they will tackle the kinetochore—a massive, dynamic protein assembly that controls chromosome separation during cell division and has resisted all existing structural techniques. If successful, this work will provide a new way to map the architecture of protein complexes that are currently invisible to X-ray crystallography or electron microscopy. This is fundamental science: it will not produce a drug or a diagnostic tomorrow, but understanding how these molecular machines are built is a prerequisite for knowing how they break in disease.
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