IB Biology SL Topic 2 — Osmosis & Water Potential Paper 1 & 2 Core idea ~10 min read

Osmosis in Cells

Put a red blood cell in pure water and it bursts. Put a plant cell in the same water and it gets firmer and healthier. Same physics, completely different outcome — and the whole difference is one cell wall.

📘 What you need to know

The three words

Everything on this page comes back to comparing the solution outside the cell with the cytoplasm inside it.

Outside solutionCompared with the cytoplasmNet movement of water
HypotonicMore dilute (lower solute concentration)Into the cell
HypertonicMore concentrated (higher solute concentration)Out of the cell
IsotonicThe same concentrationNone overall — movement in balances movement out
The isotonic row catches people out. Water molecules have kinetic energy and are crossing the membrane constantly in both directions. Write “no net movement”, never “no movement” — the cell is in dynamic equilibrium, not frozen.

Water crosses the membrane partly through the phospholipid bilayer and partly through protein channels called aquaporins, which make the membrane far more permeable to water than it would otherwise be.

Cells without a wall

Animal cells gain and lose water by osmosis just like any other cell, but with no supporting cellulose wall the consequences are more severe.

An animal cell in three different solutions HYPERTONIC ISOTONIC HYPOTONIC water leaves shrivels up, crenated no net movement stays the same size water enters swells and burstsWith no wall, nothing stops the cell shrinking or bursting This is why the tissue fluid around your cells is kept isotonic
The middle cell is what your red blood cells should look like. The other two are what happens when the tissue fluid gets it wrong.

What single-celled organisms do instead

Some unicellular organisms, such as the protozoan Amoeba, live in freshwater that is permanently hypotonic to their cytoplasm. There is a constant net influx of water, which raises the internal pressure.

They survive using a contractile vacuole: excess water is collected inside it and then pumped out of the organism, keeping the osmotic concentration of the cytoplasm steady. Without it they would burst.

Cells with a wall

The same plant cell, before and after losing water TURGID PLASMOLYSED protoplast presses on the wall turgor pressure, cell is firm protoplast pulls away flaccid, cell is plasmolysedThe wall does not stop water leaving; it stops the cell bursting In a plasmolysed cell the outside solution fills the gap, so it is not empty
The cell wall is freely permeable, so solution passes straight through it. Only the cell surface membrane is partially permeable.

In a hypotonic solution: turgid

In a hypertonic solution: plasmolysed

A detail examiners like: the cell wall is made of cellulose and is freely permeable, so the external solution flows straight through it. The gap in a plasmolysed cell is full of that solution, not empty space, and it presses on the protoplast.

Isotonic solutions in medicine

Patients sometimes need an intravenous (IV) drip to treat dehydration or to deliver medicine straight into the bloodstream. The solution used must be isotonic with blood plasma — normally a 0.9% sterile saline solution.

The same reasoning applies to donated organs for transplant surgery. They are kept in isotonic saline so that no net movement of water damages the cells before the operation.

Worked examples

WORKED EXAMPLE

Predict the effect on two cells

A red blood cell and a plant cell are both placed in distilled water. Describe what happens to each and explain the difference.

Step 1: Identify the solution Distilled water is hypotonic to both cells, so water enters both by osmosis. Step 2: The red blood cell It has no cell wall, so it keeps swelling until the membrane is stretched too far and it bursts. Step 3: The plant cell The inelastic cell wall resists the expanding protoplast, so turgor pressure builds and the cell becomes turgid rather than bursting. One bursts, one becomes turgid Both cells do the same thing; only the wall changes the outcome.
WORKED EXAMPLE

Explain a medical requirement

Explain why the saline solution used in an IV drip must be isotonic with blood plasma.

If it were hypotonic Water would enter the red blood cells by osmosis and they would burst, reducing the oxygen-carrying capacity of the blood. If it were hypertonic Water would leave the cells, which would become crenated and more likely to block capillaries and cause clots. So the requirement An isotonic solution gives no net movement of water, so the cells keep their normal shape and function. Isotonic means no net water movement Give both failure cases. A question worth three or four marks is asking for exactly this structure.
WORKED EXAMPLE

Interpret an observation

A student looks at onion cells that have been left in strong sucrose solution and sees that the cell contents have pulled away from the cell wall. Name this and explain how it happened.

Step 1: Name it Plasmolysis — the cells are plasmolysed and flaccid Step 2: The cause The sucrose solution is hypertonic to the cytoplasm, so water leaves the cells by osmosis through the partially permeable membrane. Step 3: The consequence The vacuole shrinks, the protoplast loses volume and stops pressing on the wall, then pulls away from it. Plasmolysis caused by water loss Remember the gap is filled with the external solution, since the wall is freely permeable.

💡 Exam tip

⚠ Common mix-up

Up next: Osmosis (Skills) — the potato practical, calculating percentage change in mass, and using a graph to work out what is inside the cells.

Want this explained one-to-one?

Book a free session with an experienced IB Biology tutor and get your trickiest topics made simple.

Book a Free Session →