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  1. KS3
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  3. Cells and organisation
  4. Specialised cells

Cells and organisation · System

Specialised cells

One cell in your body throws its nucleus away. Why would anything do that?

Start here

Last lesson: no nucleus, no instructions, no repair, no dividing.

All still true. And yet: a red blood cell starts out with a nucleus, in the marrow inside your bones, and as it matures it pushes that nucleus out and destroys it. It can then never repair itself and never divide, and it lasts about a hundred and twenty days. Your body does this deliberately, two million times a second.

Something must be worth all that. What does losing the nucleus buy the cell?

The bench · same seven parts

Nothing new was added. Something was turned up, and something was turned down.

These are the same seven parts you numbered last lesson. Pick a cell and read what has been tuned — and what the tuning is for.

A capillary, with red blood cells folding through it single file.

Its job

Carry oxygen from your lungs to every working cell.

Made in bone marrow, then pushed round your body about once a minute for four months. Twenty-five trillion are in you right now.

  • Nucleus (3)Pushed out and destroyed as the cell matures. The space it freed is filled with haemoglobin, the red protein that oxygen sticks to.
  • Whole cellA disc squashed in at the middle — biconcave. Same volume, much more surface, so oxygen loads and unloads faster. It also folds to squeeze through vessels narrower than itself.
  • Mitochondria (4)It has none either — which means it cannot use any of the oxygen it is carrying. A courier that ate the parcel would be no use.

The problem it solves: Nowhere to put the cargo — and not enough surface to load it through.

Break it on purpose

Take the adaptation away

0 of 8 sabotages run

Knowing the parts is not knowing the system. Sabotage one thing about , say what you think breaks first, and then follow it out from the cell to the whole organism.

What settles it

Every adaptation is an answer to a physical problem.

  • Problem 1

    Not enough surface

    Everything enters a cell through its surface. Need more in? Get more surface: a long thin hair, a folded edge, a flattened disc.

    Root hair cell · red blood cell

  • Problem 2

    Too far to travel

    A message from your toe to your spine has a metre to cross. Passing it from cell to cell costs time at every handover, so one cell is stretched the whole way.

    Nerve cell

  • Problem 3

    Work that never stops

    Movement costs energy, and energy comes from mitochondria. A cell that swims, contracts or sweeps all day is crammed with them.

    Sperm cell · muscle cell · ciliated cell

  • Problem 4

    Nowhere to put the cargo

    A cell that carries something needs room for it, and room has to come from somewhere. This is the only problem on the list solved by throwing a part away.

    Red blood cell

Think again

“Specialised cells are made of different parts from ordinary cells.”

There is no such thing as an ordinary cell. Every cell in the four you just looked at is built from the same seven parts as the cheek cell — the tuning is what differs. A nerve cell has a nucleus, cytoplasm, a membrane and mitochondria; so does a sperm cell; so does a root hair cell, plus its wall and its vacuole. Nothing on the parts list is new. What changes is how much of each, and what shape the whole thing is pulled into.

“A red blood cell is not really a cell, then.”

It is. It was made in the marrow with a full nucleus and everything else, and it gave the nucleus up on the way to the job — the way you might take the back seats out of a van. It still has a membrane, still has cytoplasm, still carries oxygen for about a hundred and twenty days. What it cannot do is repair itself or divide, and that is the price of the room it gained.

Key fact

A specialised cell has no new parts. The same seven are turned up, turned down, or reshaped.

Mastery ladder

Not started yet.

Rungs 3 and 4 you mark yourself.

Rung 1 · Name the job

A cell is long and thin, has a wall and a vacuole, no chloroplasts, and an unusually large number of mitochondria. What is it built for?

Rung 2 · The one that catches people

A student says a red blood cell is not really a cell, because it has no nucleus. What is the best reply?

Rung 3 · Explain it

A root hair cell is drawn out into a long thin hair. Explain how that shape helps the whole plant, and why a rounder cell of the same volume would be worse.

Rung 4 · Take it somewhere new

Design a cell whose job is to line the inside of your windpipe and stop dust reaching your lungs. Say which of the seven parts you would turn up, what shape you would give the cell, and what would go wrong in the whole body if that shape stopped working. You may invent a structure — but say which problem it solves.

Key note

A specialised cell is not built from different parts. It is the same seven, tuned — more of one, none of another, and a shape that answers one physical problem.

Going further

Something has to keep replacing them, and it does: about two million new cells a second, from marrow in your ribs, spine, hips and the ends of your long bones. That is the hidden cost of the trade — cargo space bought with a maintenance bill handed to the rest of the body. Why keep paying it? Because roughly five in every six of your cells are red blood cells, and the space the nucleus would have taken is haemoglobin in every single one.

Before this lesson

Connects to

At GCSE this becomes

  • Cell differentiation, exchange surfaces and surface area to volume ratio, and active transport at the root hair.

Where to next

Not sure which problem a cell is solving?

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