Actin cortex mechanics and the morphogensis of animal cells
In plain English
AI plain-English summaryEvery time a wound heals, a cell divides, or a tumour spreads, a living cell has physically deformed itself. This project investigates the fundamental physics behind that shape-shifting—how a cell’s internal molecular scaffolding, called the actin cortex, gives it mechanical properties that allow it to squeeze, stretch, and migrate. The problem is that we understand the molecules involved in cell shape control, but not how those molecules translate into the physical forces that actually move the cell. This gap matters because diseases like cancer are triggered by molecular changes, but their real-world consequences—uncontrolled division and metastasis—are mechanical failures. Without knowing how cell physics breaks down, we cannot fully understand why tumours form or how cancer cells spread. This is fundamental science, not applied medicine. The researchers are combining biology and physics to build a quantitative picture of cell mechanics. If successful, the work will provide a physical framework for interpreting how molecular defects lead to mechanical dysfunction. That framework could eventually help researchers identify which mechanical vulnerabilities in cancer cells might be exploited therapeutically—but that application lies years in the future. For now, the goal is simply to understand how a cell’s shape is physically controlled.
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