MrBadmusAI
  1. KS3
  2. Biology
  3. Respiration
  4. Why every cell respires

Respiration · System

Why every cell respires

Weeks without food. Days without water. Minutes without oxygen. The gap between those three numbers is the whole subject of this lesson.

Start here

Three weeks, three days, four minutes.

A person can survive around three weeks without food and three days without water. Without oxygen the number collapses to about four minutes before permanent damage begins. Nothing else the body needs has a deadline anything like that short.

Why is oxygen on such a different timescale?

At the bench · five cells, one reaction

What is the energy actually for?

no cells cut off yet

Five very different cells, including one from a plant.

The cell

Heart muscle cell

Animal

Contracts about once a second, every second, for a lifetime, and never gets a rest day.

Where its energy goes

  • Contracting

    70%

  • Pumping ions across the membrane

    20%

  • Repair and rebuilding

    10%

MitochondriaEnormous numbers — by some counts a third of the cell’s volume. The hardest-working cell in the body has the most machinery for the job.

Four things the energy pays for

Only one of them is moving.

  • Job one

    Movement

    Muscle contraction in animals, but also a white blood cell crawling and a sperm cell swimming. The only job on this list that is visible from outside.

  • Job two

    Building molecules

    Joining small molecules into large ones: amino acids into proteins, glucose into starch or cellulose. Growth and repair are this job, running for years.

  • Job three

    Active transport

    Moving a substance from where there is less of it to where there is more — the opposite of diffusion, and impossible without an energy supply. Root hairs and the gut lining both live on it.

  • Job four

    Keeping warm

    Mammals and birds hold their body temperature above their surroundings, and the energy comes from respiration. A reptile does not pay this bill, and eats far less as a result.

Key fact

Every living cell in every living organism respires continuously, because every other chemical process in a cell — movement, growth, repair, active transport and keeping warm — has to be paid for out of the energy respiration releases.

Think again

“Plants photosynthesise, animals respire.”

A plant is made of living cells, and a living cell that does not respire is a dead one. Every root cell, every stem cell, every leaf cell respires continuously, day and night, using oxygen and producing carbon dioxide exactly as yours do. Photosynthesis is not an alternative to respiration; it is an extra process that a plant can also do, in the cells that have chloroplasts, when there is light. Put the two together and the arithmetic works out like this: in bright light a leaf photosynthesises faster than it respires, so the net movement of gases looks like the opposite of an animal's, which is where the wrong idea comes from. Look at a root instead — buried, dark, no chloroplasts, and entirely dependent on sugar sent down from the leaves — and the plant looks exactly like you. The day-and-night version of this is the subject of Stomata and gas exchange in plants.

“You respire when you need energy — when you exercise.”

You respire fastest when you exercise. You respire all the time, and most of what you use in a day is spent while you are doing nothing you would describe as activity. Sitting still, your heart is contracting, your kidneys are filtering, your gut is transporting, your liver is running thousands of reactions, your brain is signalling, and every cell you own is pumping ions across its membrane to stay alive. That last one alone is a large and permanent bill. The clearest evidence is the four-minute figure at the top of this page: if respiration only mattered during effort, someone sitting quietly could hold their breath for an hour, and they cannot. Rest is not the state of not respiring — it is the state of respiring at your lowest rate, and that rate is still enough to keep you at 37 °C in a cold room.

Mastery ladder

Not started yet.

Rungs 3 and 4 you mark yourself.

Rung 1 · What needs energy

Which of these processes could not happen at all without respiration?

Rung 2 · The one that catches people

A potted plant is left in a completely dark cupboard. What is happening in its cells?

Rung 3 · Explain the root hair

A root hair cell absorbs mineral ions from soil where those minerals are far more dilute than they are inside the cell. Explain why this needs respiration, and why a root hair cell is packed with mitochondria.

Rung 4 · Take it somewhere new

A houseplant that is watered too often dies, and the leaves go yellow and droop as if it were short of water. Gardeners say the roots have "drowned". Explain what has actually happened, using respiration.

Key note

Respiration happens in every living cell of every living organism, plants included, continuously. The energy it releases pays for movement, for building large molecules from small ones during growth and repair, for active transport, and in mammals and birds for keeping the body warm. There is no store of oxygen, which is why the supply cannot be interrupted for more than a few minutes.

Going further

A dormouse in October has a problem an arithmetic teacher would recognise. Keeping a small warm body at 37 °C through a British winter costs more energy than a winter's food supply can provide, because a small animal loses heat quickly relative to its mass. Hibernation is the accounting solution: it abandons the temperature. Body temperature falls to a few degrees above the surroundings, the heart slows to a handful of beats a minute, and respiration drops to a tiny fraction of its normal rate — slow enough that a store of fat laid down in autumn can last until spring. The animal is not asleep in any ordinary sense and cannot simply wake up; getting back to operating temperature takes hours and costs a serious fraction of the reserve, which is why a hibernating animal disturbed too often in winter can starve before spring.

Before this lesson

Connects to

At GCSE this becomes

  • Metabolism, ATP, active transport across membranes, and calculating metabolic rate from oxygen consumption.

Where to next

Ask Mr Badmus AI

Want to work out what a cell spends its energy on?

Mr. Badmus AI

KS3 Science Tutor

preview