Plant cells rely on water pressure, not bone or muscle, to hold their shape. A rigid cell wall surrounds a flexible cell membrane, which in turn wraps a large central vacuole. When the fluid outside the cell is more dilute than the cell's interior (hypotonic), water moves in by osmosis, the vacuole swells, and the membrane presses firmly against the wall — this outward push is turgor pressure, the force that keeps leaves crisp and stems upright.
Turgor pressure inside a healthy plant cell can reach 5–10 atmospheres — several times the pressure in a car tyre — which is why wilting happens so fast once that pressure is lost.
An interactive 3D plant cell whose vacuole swells or shrinks as the surrounding water concentration changes, pressing the flexible membrane against the rigid cell wall to build or lose turgor pressure.
Osmosis driven by a solute concentration gradient across the membrane: a dilute (hypotonic) external solution draws water in and inflates the vacuole against the wall, while a concentrated (hypertonic) solution pulls water out and causes plasmolysis.
Drag the external solute concentration slider or pick a hypotonic/isotonic/hypertonic preset, adjust wall stiffness to see how it changes pressure build-up, and toggle the cutaway view to look inside the cell. Drag to rotate, scroll to zoom.
Turgor pressure alone — not rigid skeletons — is what keeps most herbaceous plants standing upright; lose enough of it and the same cells that held a leaf flat let it wilt within minutes.