IB Biology SL Topic 3 — Coordinating Body Systems Paper 1 & 2 Core idea ~10 min read

Reflex Arcs & Movement Control

Touch something hot and your hand is already moving before you feel anything. You did not decide to move it — the spinal cord made that call and told your brain afterwards. This page is about the shortcut that makes that possible, and about the part of the brain that stops your movements being clumsy.

📘 What you need to know

What makes something a reflex

Three features, and questions usually want all three:

ReflexStimulusWhat it protects you from
BlinkingObject approaching, dust, drynessDamage to the surface of the eye
CoughingFood or mucus in the airwayBlocked airways and infection
Pupil reflexBright lightDamage to the retina
Knee jerkStretch of the tendon below the kneeFalling over — it helps you stay upright
Pain withdrawalSharp pin or a hot surfaceBurns and cuts to the hand
The knee jerk surprises people because nothing dangerous is happening. Its real job is balance: when you are standing and your knee starts to buckle, the tendon stretches and the muscle instantly pulls back. Doctors just tap it to check the pathway is working.

The pain reflex arc

This is the example the syllabus uses, and the one worth learning line by line.

A spinal reflex: in one side, straight out the other the whole decision happens inside the spinal cord WHITE MATTER axons running to the brain GREY MATTER cell bodies and relay neuronesSPINAL CORD shown in cross section RELAY NEURONE links sensory to motor SENSORY NEURONE (in) MOTOR NEURONE (out) RECEPTOR pain receptor in the skin the pin is the stimulusEFFECTOR muscle in the arm contracts, hand pulls awayA copy does travel up to the brain — but the hand has already moved. Feeling the pain a moment later is the proof that the brain was not in charge.
Only three neurones stand between the pin and the muscle. Every extra synapse would add delay, which is exactly what a protective response cannot afford.

🧩 The pain reflex, step by step

  1. Stimulus — a sharp pin or a hot flame touches the skin of the hand.
  2. Receptor — a pain receptor, called a nociceptor (you may also see it written nocireceptor), detects it.
  3. Sensory neurone — an impulse travels along a sensory neurone into the spinal cord.
  4. Relay neurone — in the grey matter, the impulse is passed straight across to a relay neurone, which synapses with a motor neurone.
  5. Motor neurone — carries the impulse out to the arm.
  6. Effector — the muscle contracts, pulling the hand away. That contraction is the reflex response.

Between each neurone is a synapse, and impulses cross a synapse by the diffusion of a chemical neurotransmitter. Synapses cost time, which is why a short pathway matters so much.

The reflex arc, in order stimulus → receptor → sensory → relay → motor → effector → response
The brain is told, just not asked. An impulse does travel up the spinal cord to the brain, which is how you become aware of what happened. But it plays no part in coordinating the response, so the withdrawal happens first and the “ouch” arrives second.
A neat way to see this: think about how often you have pulled your hand back from something hot and only then wondered what you touched. That gap between acting and knowing is the reflex arc doing its job.

Controlling movement: who does what

Voluntary movement is a two-part job, and questions love the difference.

Balance is a surprisingly complicated job. It needs information from the eyes, from the semicircular canals in the ears and from many muscles at once, all combined and acted on continuously. The cerebellum also coordinates posture, walking, hand and finger movements, eye movements and speech.

The cerebellum is a coach, not a captain it never starts the movement, it keeps correcting it while it happens MOTOR CORTEX part of the cerebrum starts the movementMUSCLES MOVE arms, legs, eyes, tongue the order is carried outSENSES REPORT BACK proprioceptors, eyes, ears where the body actually isCEREBELLUM compares plan with reality sends corrections out round and roundThe loop runs constantly, which is why movement looks smooth rather than jerky. Damage the cerebellum and the movement still happens — it just goes badly.
This is a feedback loop, exactly like the ones controlling heart rate and breathing. Once you spot the pattern, control questions get much easier.
Think of reaching for a glass of water. The motor cortex says “reach”. The cerebellum is the one making tiny corrections all the way, so your hand arrives at the glass and not six centimetres past it.

Worked examples

WORKED EXAMPLE

Outline the pathway of a spinal reflex when a person stands on a sharp stone. [3]

Detection Pain receptors in the skin of the foot detect the stimulus and an impulse passes along a sensory neurone to the spinal cord. Processing In the grey matter, a relay neurone passes the impulse to a motor neurone — the brain is not involved. Response The motor neurone carries the impulse to a leg muscle, which contracts and lifts the foot. Receptor → sensory → relay → motor → effector name every neurone type — missing the relay neurone is the usual lost mark
WORKED EXAMPLE

Explain why a reflex response is faster than a conscious response. [2]

Compare the route In a reflex the impulse only travels to the spinal cord and back, not up to the brain and down again. Then say why a shorter route is faster The pathway is shorter and there are fewer synapses to cross, and crossing a synapse by diffusion takes time. Shorter pathway + fewer synapses = less delay “fewer synapses” is the mark most students forget
WORKED EXAMPLE

A patient with damage to the cerebellum can still move their arm, but cannot pick up a cup without knocking it over. Explain. [3]

Why movement still happens Movement is initiated by the motor cortex of the cerebrum, which is undamaged. What is missing The cerebellum normally receives feedback from proprioceptors, eyes and ears and uses it to coordinate the movement. The consequence Without those corrections the movement is not smooth or accurate, so the hand overshoots and balance is poor. Initiation is fine; coordination is lost the whole question turns on “initiates” vs “coordinates”

💡 Exam tip

⚠ Common mix-up

Up next: Epinephrine & Melatonin — two hormones that show what chemical control can do that nerves cannot.

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