Protein folding homeostasis - from mechanisms to interventions
In plain English
AI plain-English summaryCells have a built-in stress response that keeps their protein factories running smoothly, and this project aims to hijack three specific parts of that system to fix it when it breaks. The problem is that when cells are under stress—from disease, ageing, or infection—their protein-folding machinery in the endoplasmic reticulum (ER) can become overwhelmed. This triggers the unfolded protein response (UPR), a survival mechanism that normally restores balance. But in chronic conditions like neurodegeneration, diabetes, or cancer, the UPR itself can malfunction, either failing to shut off or overcorrecting. The researchers want to understand three understudied enzymes that control this response: a bifunctional enzyme called FICD that modifies the key chaperone BiP; a regulatory pathway involving eIF2 and eIF2B that controls protein synthesis; and a phosphatase that turns the whole signal off. This is fundamental science. If successful, it will reveal how these molecular switches work at atomic resolution, using cryo-electron microscopy, CRISPR gene editing, and small-molecule screening. The long-term hope is that this knowledge could lead to new drugs that fine-tune the UPR in specific diseases—for example, boosting protein folding in Alzheimer’s or shutting it down in certain cancers. But the immediate goal is simply to map the machinery.
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