IB Biology HL Specialised Cells & Stem Cells Paper 1 & 2 ~14 min read

Cell Specialisation

Once a cell commits to a job, everything about it can change to suit that job — its shape, which organelles it keeps, even its size. But size has a hard limit, and that limit is the reason you are made of trillions of cells rather than one enormous one.

📚 What you need to know

Differentiation and the division of labour

A eukaryotic cell in a complex organism does not try to do everything. It becomes specialised for one job, and other cells specialise for theirs. Biologists call this the division of labour, borrowing the phrase from economics, and it works for the same reason: doing one thing well beats doing everything adequately.

The process starts after fertilisation, as the embryo develops different tissues. The development of these distinct specialised cells is called differentiation, and it works by switching different genes on and off. Every cell keeps the same DNA; what changes is which parts of it are used.

Two kinds of structural adaptation matter most:

Whenever you are asked how a cell is adapted, run through the same three questions: what shape is it and why, which organelles are unusually abundant or missing and why, and what size is it and why. Nearly every mark scheme in this topic is built from those three.

Cells come in wildly different sizes

Specialised cells vary enormously in size The steps are not drawn to scale — the real range is far bigger than this.red blood cell white blood cell sperm cell egg cell nerve cell muscle cell 8 µm 12–17 µm 55 µm 100 µm 300–400 µm 300 mmSize is an adaptation, not an accident. A muscle cell is roughly forty thousand times longer than a red blood cell.
Each size is explained by a job. Small to squeeze through capillaries, long to carry a signal or exert a force, large to store food for an embryo.
CellSize featureWhy that helps
Red blood cellVery smallCan move through narrow capillaries
Active white blood cellLarger than an inactive oneMakes room for rough ER and Golgi apparatus to synthesise antibodies
Sperm cellLong, with a narrow streamlined headMovement towards the egg, with reduced resistance
Egg cellThe largest volume of any human cellStores food reserves for the early embryo
Nerve cellLarge cell body and a very long axonThe cell body supports protein synthesis; the axon carries impulses over distance
Muscle cellLong and wideLength and diameter allow it to exert force during contraction

Why cells cannot simply grow bigger

Here is the argument in one line: a cell’s demands depend on its volume, but its ability to meet them depends on its surface area. Those two do not grow at the same rate.

Bigger means a smaller surface area to volume ratio Cubes are a simplified model, but the scale factors are real.As the cube grows: • volume rises faster • than surface area does • so SA:V falls 1 cm cube 2 cm cube 3 cm cube Surface area / square cm Volume / cubic cm Surface area : volume6 24 54 1 8 27 6 : 1 3 : 1 2 : 1Nine times the surface area, but twenty-seven times the volume.
Read the bottom row from left to right: 6, then 3, then 2. The ratio falls even though the surface area is growing.

What this means for real cells

FeatureA small cell (high SA:V)A large cell (low SA:V)
Metabolic requirementsRelatively lowHigher, because there is more cytoplasm
Surface area availableLarge enough for enough nutrients and gases in, and waste outNot large enough for a sufficiently high rate of exchange
Diffusion distanceShort, so substances reach every organelle quicklyLong, so substances cannot reach the centre fast enough
OutcomeCan survive by simple diffusion at the cell surfaceGrowth must stop and the cell must divide

Single-celled organisms manage perfectly well because their SA:V ratio is high. Once cells cannot grow any further, the only route to a bigger organism is to have more cells — which is where multicellular organisms come from.

But being multicellular creates the same problem at a larger scale: the organism as a whole now has a poor SA:V ratio. Multicellular organisms have therefore evolved adaptations to get round it:

The one-line version. The rate of metabolism depends on the mass or volume of the cell; the rate of exchange depends on the surface area. Write that sentence into any SA:V answer and the rest follows.

Modelling SA:V with agar cubes

This is the nature of science point for this sub-topic: models are simplified versions of complex systems. Scientists use models to represent things that cannot easily be investigated directly, and can then experiment on the model to test predictions.

Agar cubes are not shaped like cells and do not have membranes. But the scale factors behave in exactly the same way, so the effect on diffusion is real and measurable.

🧩 The agar cube method

  1. Make up coloured agar containing Universal Indicator, or very dilute sodium hydroxide solution plus Universal Indicator, and let it set.
  2. Cut it into cubes of the required dimensions, for example 0.5 cm, 1 cm and 2 cm along each side.
  3. Calculate the surface area, volume and SA:V ratio of each cube and record them before you start.
  4. Place each cube in a boiling tube containing the same measured volume of dilute hydrochloric acid. The acid must be at a higher molarity than the alkali so the colour change is visible.
  5. Time how long each cube takes to change colour all the way through — or measure how far the colour change travels into the block in a fixed time, such as five minutes.
  6. Convert the times to rates using rate = 1 ÷ time, then plot rate of diffusion against SA:V ratio.
CubeSurface area / square cmVolume / cubic cmSA:VTime / sRate / per s
A (0.5 cm)1.50.12512 : 11760.0057
B (1 cm)616 : 12590.0039
C (2 cm)2483 : 13840.0026

The conclusion writes itself: as the SA:V ratio of the cube increases, the rate of diffusion through it also increases. Cube C had the smallest ratio and the slowest rate; cube A had the largest ratio and the fastest rate.

Watch the units. Rate here is 1 ÷ time, so it is measured per second. A common slip is to plot the raw times instead of the rates — which gives a graph sloping the opposite way and a conclusion that says the reverse of what you mean.

Worked examples

WE 1

Calculating SA:V

A cube-shaped model cell has sides of 4 cm. Calculate its surface area to volume ratio. (2 marks)

Step 1: surface area A cube has 6 faces, each 4 × 4 = 16, so the surface area is 6 × 16 = 96 square cm. Step 2: volume 4 × 4 × 4 = 64 cubic cm. Step 3: the ratio 96 ÷ 64 = 1.5, so the ratio is 1.5 : 1. 1.5 : 1 always show both figures before dividing — a wrong answer with correct working still scores
WE 2

Explaining the limit on cell size

Explain why cells cannot continue to grow indefinitely. (4 marks)

Point 1: what demand depends on Metabolic reactions happen in the cytoplasm, so metabolic requirements depend on the cell’s volume. Point 2: what supply depends on Exchange of nutrients, gases and waste happens across the plasma membrane, so it depends on surface area. Point 3: the mismatch As a cell grows, volume increases faster than surface area, so the SA:V ratio falls and exchange cannot keep pace with demand. Point 4: the extra problem The diffusion distance to the centre also becomes too long. Growth must therefore stop and the cell must divide. demand grows with volume, supply grows with surface area, and volume wins 4 marks means four separate points — do not merge steps 1 and 2 into one sentence
WE 3

Evaluating the model

Agar cubes are used to model the effect of SA:V ratio on diffusion into cells. Suggest one strength and one limitation of this model. (2 marks)

Strength The scale factors are the same as in real cells, so the relationship between SA:V and rate of diffusion can be measured and tested directly. Limitation Agar cubes are not shaped like cells and have no plasma membrane, so they cannot model selective permeability or any active transport. the geometry is realistic; the biology is not “suggest a limitation” wants a biological difference, not “the cubes might be cut unevenly”

💡 Exam tips

⚠ Common mistakes

Up next: Specialised Cells — if a low SA:V ratio is the problem, some cells have evolved remarkable ways to push their own ratio back up.

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