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Co-ordinated Sciences · Lesson

Connect transport and gas exchange in a supplied scenario

A question gives you breathing figures and heart figures together, and it is not clear which idea to start with.

On this page
  1. How do the three ideas fit together?
  2. Calculating the change from supplied data
  3. Worked example (invented data)
  4. The mistake to watch for
  5. Check yourself
  6. Where this leads next

An integrated question treats breathing, blood flow and respiration as one chain. Cells need oxygen and make carbon dioxide, the lungs exchange gases with the blood, and the heart moves the blood between them. If you can state each link in order, most scenario questions become easier.

This skill belongs to integrated biological reasoning. It appears in Co-ordinated Sciences papers whenever data about exercise, altitude or illness is supplied. Check your own syllabus year on the Cambridge subject page for the exact wording.

How do the three ideas fit together?

Start from the cell, not the lungs. Respiring muscle cells use oxygen and release carbon dioxide. Both gases move down concentration gradients, so oxygen moves from blood into cells and carbon dioxide moves from cells into blood.

The blood carries both gases. Carbon dioxide arriving at the lungs diffuses out into the alveoli, and oxygen diffuses in. Breathing keeps those gradients steep by replacing the air.

So when the cells work harder, three things follow: the breathing rate and depth rise, the heart rate rises, and the blood moves faster. Each one answers the same demand.

Calculating the change from supplied data

Two formulas are useful:

  • ventilation rate = breaths per minute × volume per breath
  • cardiac output = heart rate × stroke volume (volume pumped per beat)

Worked example (invented data)

A student’s figures at rest and after running on the spot are below. The numbers are invented for this lesson.

RestAfter exercise
Breaths per minute1424
Volume per breath (dm³)0.501.00
Heart rate (beats per minute)70150
Stroke volume (cm³)70100

Step 1, ventilation at rest: 14 × 0.50 = 7.0 dm³ per minute.

Step 2, ventilation after exercise: 24 × 1.00 = 24 dm³ per minute.

Step 3, compare: 24 ÷ 7.0 = 3.43, so ventilation rose by a factor of about 3.4.

Step 4, cardiac output at rest: 70 × 70 = 4900 cm³ per minute, which is 4.9 dm³ per minute.

Step 5, cardiac output after exercise: 150 × 100 = 15 000 cm³ per minute, which is 15.0 dm³ per minute.

Step 6, compare: 15.0 ÷ 4.9 = 3.06, so cardiac output rose by a factor of about 3.1.

Step 7, explain: the muscles respire faster, so they need more oxygen. Breathing rises by about 3.4 times and blood flow by about 3.1 times, so both oxygen supply and carbon dioxide removal increase together.

The mistake to watch for

Mistaken answer: “The heart beats faster so that the lungs can make more oxygen.”

The lungs do not make oxygen. They exchange gases between air and blood.

The heart does not feed the lungs either. The correct link is that blood carries oxygen from the lungs to the respiring muscles, so a faster heart delivers it sooner.

A second slip is mixing units. Stroke volume is in cm³ and ventilation is in dm³. Convert (1 dm³ = 1000 cm³) before comparing the two.

Check yourself

1. A person takes 16 breaths per minute, each of 0.45 dm³. Calculate the ventilation rate.

Show answer

16 × 0.45 = 7.2 dm³ per minute.

2. A heart beats 80 times per minute with a stroke volume of 60 cm³. Calculate the cardiac output in dm³ per minute.

Show answer

80 × 60 = 4800 cm³ per minute. Divide by 1000: 4.8 dm³ per minute.

3. Explain why the carbon dioxide concentration in the blood leaving working muscle is higher than in the blood arriving.

Show answer

Muscle cells release carbon dioxide from respiration. It diffuses from the cells, where the concentration is higher, into the blood, where it is lower, so the blood leaving the muscle carries more.

Where this leads next

Next, see how an enzyme pattern affects a larger process. When you want mixed questions, use the integrated biological reasoning practice set, and the scientific investigation critic helps you check your reasoning.

If you know the facts but lose marks joining them, our teachers can work on that link with you in online one-to-one Co-ordinated Sciences tuition.

Questions people ask

Is breathing the same as respiration?

No. Breathing is the movement of air in and out of the lungs. Respiration is the chemical process in cells that releases energy from glucose. The two are linked because breathing brings in the oxygen that respiration uses and removes the carbon dioxide that respiration makes.

Why does the heart rate rise during exercise?

Muscle cells respire faster, so they need more oxygen and produce more carbon dioxide. A faster heartbeat moves blood round the body more quickly, so oxygen reaches the muscles sooner and carbon dioxide is carried back to the lungs sooner.

What is the unit for ventilation rate?

Ventilation rate is the volume of air moved per minute, so it is written in dm³ per minute (or cm³ per minute). You find it by multiplying breaths per minute by the volume of air in each breath.

Updated:

Your next step

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