Edexcel A-level PE (9PE0) · Exercise Physiology and Applied Movement Analysis
Mini-Lesson
Exercise Physiology & Movement
This mini-lesson builds Edexcel's Exercise Physiology — the three energy systems, EPOC, VO₂ max and training — and its Applied Movement Analysis: lever systems, mechanical advantage, and planes and axes.
Work through each screen, answer the questions (some are wordy, some are calculations you must recompute) and collect ⭐ stars. Press Start when you're ready.
Energy · the ATP currency
ATP — the energy currency
Every muscle contraction is powered by adenosine triphosphate (ATP). When ATP loses a phosphate it becomes ADP and releases energy:
ATP → ADP + Pi + energycatalysed by the enzyme ATPase · this is an exothermic (energy-releasing) reaction
The body stores only enough ATP for about 2–3 seconds of maximal work, so it must constantly be resynthesised (ADP + Pi → ATP). Three energy systems rebuild ATP, and which one dominates depends on the intensity and duration of the activity.
Key idea: the systems never work alone — they overlap on the energy continuum. We label an activity by its predominant system.
Energy · ATP-PC (alactic)
The ATP-PC system
For short, explosive efforts the muscle uses stored phosphocreatine (PC) in the sarcoplasm. The enzyme creatine kinase breaks the PC bond and the released energy resynthesises ATP:
PC → Pi + creatine + energythe energy from one PC rebuilds one ATP — a 1:1 coupled reaction
Type: anaerobic and alactic — no lactic acid is produced.
Duration: peaks for ~8–10 seconds until PC stores are depleted.
Used for: maximal power — 100 m sprint, shot put, a smash in tennis.
Recovery: PC stores are fully replenished within ~2–3 minutes of rest using oxygen (the fast component of EPOC).
Energy · anaerobic glycolytic (lactic)
The anaerobic glycolytic system
Once PC runs low, muscle glycogen is broken to glucose and split anaerobically in glycolysis (in the sarcoplasm), controlled by the enzyme phosphofructokinase (PFK):
glucose → 2 ATP + lactic acidanaerobic glycolysis nets 2 ATP per glucose molecule; pyruvate becomes lactate
By-product:lactic acid (lactate + H⁺), which lowers muscle pH and causes fatigue.
Duration: dominant from ~10 seconds up to ~3 minutes; peak power at around 1 minute.
Used for: the 400 m sprint, a 100 m swim, repeated high-intensity efforts.
Net vs gross: glycolysis uses 2 ATP to start and produces 4, so the net yield is 2 ATP per glucose.
Quick check
Which system, which by-product?
?A shot-putter's throw lasts about 2 seconds at maximal power. Which energy system predominates, and what are its by-products?
Energy · aerobic
The aerobic system
When oxygen is available, glucose (and later fats) are fully broken down in three stages for a huge ATP yield:
Glycolysis (sarcoplasm): glucose → pyruvate, net 2 ATP — the same first step, but now aerobic.
Krebs cycle (mitochondrial matrix): pyruvate is oxidised, producing 2 ATP, CO₂ and hydrogen carriers.
Electron transport chain (cristae of mitochondria): hydrogen is oxidised to water, yielding 34 ATP.
glucose + O₂ → ~38 ATP + CO₂ + H₂O2 (glycolysis) + 2 (Krebs) + 34 (ETC) = 38 ATP per glucose molecule
Fuel: at low–moderate intensity fats (fatty acids, via beta-oxidation) yield even more ATP per molecule, but need more oxygen. By-products are only CO₂ and water, so long-duration work (marathon) is possible.
Sort it
Which energy system?
Tap a characteristic, then tap the energy system it belongs to.
💥 ATP-PC
⚡ Anaerobic glycolytic
🫁 Aerobic
Energy · the continuum
The energy continuum & thresholds
All three systems run at once; the predominant one changes with intensity and duration. A threshold is the point where one system hands over to the next:
ATP-PC / lactic threshold: where PC is exhausted (~8–10 s) and the glycolytic system takes over.
Lactic / aerobic threshold: where lactate levels off and the aerobic system dominates (after ~2–3 min).
Lactate (anaerobic) threshold: the exercise intensity at which blood lactate begins to rise sharply — trained athletes reach it at a higher % of VO₂ max.
OBLA: the onset of blood lactate accumulation is usually taken at a blood lactate concentration of about 4 mmol·L⁻¹.
Quick check
Where does it happen?
?In the aerobic system, where do the Krebs cycle and the electron transport chain take place?
Recovery · EPOC
EPOC & the oxygen debt
EPOC — excess post-exercise oxygen consumption — is the extra oxygen taken in after exercise, above resting levels, to restore the body to its pre-exercise state. It has two components:
Fast (alactacid) component: lasts ~2–3 minutes. Resynthesises ATP and PC stores and re-saturates myoglobin with oxygen. Needs ~1–4 litres of O₂.
Slow (lactacid) component: can last hours (up to 24–48 h). Removes lactic acid (oxidised to CO₂ + H₂O, or reconverted to glycogen via the Cori cycle), and covers the raised heart rate, breathing, temperature and hormone levels.
Oxygen debt is the older term for the volume of oxygen consumed in recovery above what is needed at rest — essentially the EPOC.
Match it
Match each term to its meaning
Tap a term on the left, then its matching definition on the right.
Term
Meaning
Aerobic capacity · VO₂ max
VO₂ max & the factors affecting it
VO₂ max is the maximum volume of oxygen that can be taken in, transported and used by the body per minute during exhaustive exercise. It is the best single measure of aerobic capacity.
Absolute VO₂ max is in litres/min (or ml/min); relative VO₂ max divides by body mass to give ml·kg⁻¹·min⁻¹, allowing fair comparison between performers.
Factors that raise it: aerobic training (↑ by ~10–20%), youth, larger heart/stroke volume, more haemoglobin, greater capillary and mitochondrial density.
Factors that lower it: increasing age, sedentary lifestyle/smoking, and (on average) smaller body size — females typically record lower absolute values than males.
Test: the multi-stage fitness test (bleep test) predicts VO₂ max; direct measurement uses a gas analyser during a maximal treadmill test.
Calculate
Your turn — relative VO₂ max
1A runner has an absolute VO₂ max of 4000 ml/min and a body mass of 80 kg. Calculate their relative VO₂ max in ml/kg/min.
ml/kg/min
Working
relative VO₂ max = absolute VO₂ ÷ body mass
= 4000 ml/min ÷ 80 kg = 50 ml/kg/min
Hint: divide the ml/min figure by the mass in kg.
Training · heart-rate zones
Maximum heart rate & training zones
To set the intensity of aerobic training, coaches estimate maximum heart rate and work at a percentage of it (an aerobic zone sits at roughly 60–80% of HRmax):
HRmax ≈ 220 − agethe upper end nears the anaerobic/lactate threshold; the lower end builds an aerobic base
Methods are chosen to match the energy system: continuous (aerobic base), interval/HIIT (anaerobic + aerobic), fartlek ("speed play", both systems), and plyometric (explosive power via the stretch-shortening cycle). Principles: SPORT and FITT; periodisation peaks fitness for competition.
Remember: 220 − age is an estimate that ignores individual variation, but Edexcel expects you to use it to set target zones.
Calculate
Your turn — maximum heart rate
2A performer is 20 years old. Estimate their maximum heart rate using 220 − age.
bpm
Working
HRmax = 220 − age = 220 − 20 = 200 bpm
Hint: subtract the age from 220.
Movement analysis · levers
Lever systems in the body
A lever has three parts: a fulcrum (the joint), an effort (the muscle's pull) and a load/resistance (the weight moved). Which part sits in the middle names the class:
First class — fulcrum in the middle (E–F–L). Example: extension of the neck, or the triceps extending the elbow.
Second class — load in the middle (F–L–E). Example: plantar-flexion at the ankle rising onto tiptoes. Effort arm > load arm, so mechanical advantage > 1 (moves a big load).
Third class — effort in the middle (F–E–L). Example: flexion at the elbow (biceps curl). The most common lever in the body.
Memory hook: the middle letter runs F–L–E for first, second, third class (1-2-3).
Movement analysis · planes, axes & MA
Planes, axes & mechanical advantage
Movements are described in three planes, each with a matching axis of rotation:
Transverse plane / longitudinal axis — rotation (a spin or twist).
Mechanical advantage (MA) compares the two lever arms:
MA = effort arm ÷ resistance armMA > 1 → force advantage (2nd class) · MA < 1 → speed & range advantage (3rd class)
Third-class levers have a short effort arm, so MA < 1 — they sacrifice force but move the load a large distance quickly (great for throwing and kicking).
Calculate
Your turn — mechanical advantage
3In a biceps curl (a third-class lever), the effort arm is 5 cm and the resistance arm is 25 cm. Calculate the mechanical advantage.
(ratio)
Working
MA = effort arm ÷ resistance arm = 5 cm ÷ 25 cm = 0.2
MA < 1, confirming a third-class lever favours speed and range, not force.
Hint: divide 5 by 25.
Quick check
Choose the method
?A hockey player wants to develop both aerobic and anaerobic fitness by continuously running while varying pace and terrain. Which training method fits best?
Quick check
Which lever class?
?During the upward phase of a biceps curl the elbow flexes. The biceps' effort lies between the elbow joint and the weight in the hand. Which class of lever is this, and what is its advantage?
Recap
The big ideas to know
ATP-PC: phosphocreatine · alactic · ~8–10 s · power (100 m, shot put)
Anaerobic glycolytic: glucose → 2 ATP + lactic acid · ~10 s–3 min (400 m)
Aerobic: glycolysis + Krebs + ETC → ~38 ATP + CO₂ + H₂O · long duration