OCR GCSE Biology A: Gateway Science (J247)
B3.1 Coordination and control — the nervous system
Your nervous system is the fast, electrical control system of your body. Where hormones drift slowly through the blood, nerve impulses race along neurones in milliseconds — which is why you snatch your hand back from something hot before you have even consciously felt the pain. OCR Gateway Science Biology A (J247) topic B3.1 — Coordination and control: the nervous system — wants you to know the parts (CNS + receptors + effectors), the three types of neurone (sensory, relay, motor), how a synapse passes the signal across a tiny gap, and — above all — how to write a tight four- to five-mark answer on the reflex arc using OCR's exact marking phrases.
Why this matters
Like the endocrine system, the nervous system exists to coordinate the body — but it does so using electrical impulses travelling along specialised cells called neurones, rather than chemicals carried in the blood. Receptors all over the body detect stimuli (light, sound, temperature, pressure, chemicals). They convert those stimuli into electrical impulses which travel along sensory neurones to the central nervous system (CNS) — the brain and spinal cord. The CNS acts as the coordination centre: it processes the information and decides what to do. Motor neurones then carry impulses back out to effectors, which are either muscles (which contract) or glands (which secrete substances such as hormones). For most responses, the brain is involved and the response is consciously controlled — pulling out a chair, picking up a pen. But for some life-or-death situations — touching something hot, dust hitting the eye, food entering the back of the throat — speed matters more than control. Reflex actions short-circuit the brain entirely: the impulse goes only as far as the spinal cord, where a single relay neurone passes it directly to the motor neurone. The result is a response that is automatic, rapid and unconscious — which protects the body from damage. Synapses, the tiny gaps between neurones, are the one place where the signal is briefly chemical rather than electrical — vesicles release a neurotransmitter that diffuses across the cleft and triggers a fresh impulse in the next neurone.
How to learn this topic
Build on what you already know
- Cells have specialised structures — neurones have a long axon and dendrites.
- The body is organised into systems — the nervous system is one of two coordination systems.
- Basic idea of homeostasis (introduced earlier in B3).
- Comparison with the endocrine system (B3.2) — chemical vs electrical, slow vs fast.
- Define stimulus, receptor, coordinator, effector and response — the five stages of any nervous-system response.
- Split the nervous system into the CNS (brain + spinal cord) and the peripheral nerves.
- Introduce the three neurone types — sensory, relay and motor — and what each carries and where it lives.
- Build the reflex arc step by step: stimulus → receptor → sensory → relay → motor → effector → response.
- Contrast a reflex (no brain) with a conscious response (brain involved, slower).
- Explain synapses — how a chemical neurotransmitter bridges the gap between neurones.
- (Higher tier) Map the regions of the brain — cerebral cortex, cerebellum, medulla — and how they are studied.
- Practise four- to five-mark answers using the exact OCR marking phrases.
Key terms
- nervous system
- The body's fast, electrical coordination system, made of neurones — including the central nervous system and peripheral nerves. (Contrast with the endocrine system: nervous uses electrical/nerve impulses; nervous response is fast/rapid; endocrine response is slower.)
- central nervous system (CNS)
- The brain and spinal cord. Acts as the coordination centre that receives information from receptors and sends instructions to effectors.
- neurone
- A long, thin cell that carries electrical impulses. Three types: sensory, relay and motor. (Spell 'neurone' carefully — 'neuron' is also accepted but be consistent.)
- sensory neurone
- A neurone that transmits impulses from a receptor to the CNS. Cell body sits in the middle of the cell. (OCR mark-scheme phrasing: 'sensory transmits impulse from receptor to CNS' — direction matters.)
- relay neurone
- A short neurone inside the CNS (especially the spinal cord) that connects a sensory neurone to a motor neurone. (OCR phrasing: 'relay passes impulse from sensory to motor' — and name the location (spinal cord/CNS).)
- motor neurone
- A neurone that transmits impulses from the relay neurone/CNS to an effector (muscle or gland). Has a cell body at one end with many dendrites and a long axon. (OCR phrasing: 'motor transmits impulse from relay to effector'. Always pair motor neurone with an effector.)
- receptor
- A specialised cell that detects a stimulus (e.g. light in the retina, pressure in the skin) and converts it into a nerve impulse. (OCR phrasing: 'receptor detects the stimulus'. Don't say 'feel' or 'sense'.)
- effector
- A muscle (which contracts) or a gland (which secretes) — the part of the body that actually carries out a response. (OCR phrasing: 'effector is a muscle or gland producing the response'. Worth a mark to name both.)
- synapse
- The tiny gap between two neurones. The electrical impulse is briefly converted to a chemical signal — a neurotransmitter — that diffuses across the gap. (Higher-tier students should mention vesicles, diffusion and receptors on the postsynaptic membrane.)
- neurotransmitter
- The chemical released from vesicles on the presynaptic side of a synapse. It diffuses across the synaptic cleft and binds to receptors on the next neurone, triggering a new impulse.
- reflex action
- An automatic and rapid response that does not involve the conscious part of the brain. Protects the body from damage. (Marking-phrase trio: 'rapid', 'automatic', 'does not involve the brain / conscious thought'.)
- reflex arc
- The pathway of neurones that produces a reflex: stimulus → receptor → sensory neurone → relay neurone in spinal cord → motor neurone → effector → response. (Memorise the order. Every word is a potential mark in OCR five-mark reflex-arc questions.)
- cerebral cortex
- The wrinkled outer layer of the brain. Controls consciousness, intelligence, memory and language. (Higher tier.)
- cerebellum
- The region at the back of the brain that controls balance and coordination of muscular movement. (Higher tier.)
- medulla
- The region at the base of the brain that controls unconscious activities such as heart rate and breathing. (Higher tier.)
Notes
The job of the nervous system
The nervous system lets us react to our surroundings and coordinate our behaviour. It uses electrical impulses travelling along neurones — much faster than the chemical signals used by the endocrine system. Every response, whether reflex or conscious, follows the same five-stage pattern:
stimulus → receptor → coordinator (CNS) → effector → response
- A stimulus is a change in the environment (heat, light, sound, pressure, chemical).
- A receptor is a cell that detects the stimulus and converts it into a nerve impulse.
- The CNS (central nervous system — the brain and spinal cord) acts as the coordination centre.
- An effector is a muscle or a gland — what actually carries out the response.
- The response is the action: a muscle contracts, or a gland secretes.
Receptors and effectors
Receptors are specialised cells that detect particular stimuli:
- light receptors in the retina (eye)
- sound + balance receptors in the inner ear
- temperature, pressure and pain receptors in the skin
- chemical receptors in the tongue (taste) and nose (smell)
Effectors carry out the response. Only two types:
- muscles — contract to move part of the body
- glands — secrete chemicals such as hormones, sweat, saliva or digestive enzymes
The central nervous system (CNS)
The CNS is the brain and spinal cord. It receives information from receptors, processes it, and sends instructions to effectors. The brain is the coordination centre for conscious responses; the spinal cord is a thick column of nerves running down the back, protected by the vertebrae, that coordinates reflex actions and carries signals between brain and body.
Nerves that run between the CNS and the rest of the body make up the peripheral nervous system.
Three types of neurone
Neurones are long, thin cells that carry electrical impulses. Three kinds:
- Sensory neurones transmit impulses from a receptor to the CNS. They have a cell body in the middle, with a long dendron carrying the impulse in from the receptor and a long axon carrying it on into the CNS.
- Relay neurones live entirely inside the CNS (usually the spinal cord). They are short, with no myelin, and pass the impulse from a sensory neurone to a motor neurone.
- Motor neurones transmit impulses from the relay neurone/CNS to an effector (a muscle or a gland). They have a cell body with many dendrites at one end and a single long axon stretching out to the effector.
Most sensory and motor neurones are wrapped in a fatty myelin sheath that speeds up the impulse.
Synapses — how impulses cross between neurones
Neurones don't physically touch — there's a tiny gap between them called a synapse (the gap itself is the synaptic cleft). The electrical impulse can't jump across the gap directly, so it's temporarily turned into a chemical signal:
- The impulse arrives at the end of the presynaptic neurone.
- Tiny sacs called vesicles release neurotransmitter molecules into the cleft.
- Neurotransmitter diffuses across the gap.
- It binds to receptors on the postsynaptic neurone.
- A new electrical impulse is generated, and travels on.
The whole process is one-way (vesicles are only on the presynaptic side) and takes only a few milliseconds — but each synapse adds a small delay, which is why responses with more synapses (e.g. conscious responses involving the brain) are slower than reflexes.
Reflex actions — the reflex arc
A reflex action is an automatic, rapid response that does not involve the conscious part of the brain. Reflexes protect the body from harm — pulling your hand off a hot pan, blinking when something flies at your eye, your pupils shrinking in bright light.
The path of a reflex is called the reflex arc:
stimulus → receptor → sensory neurone → relay neurone (in spinal cord) → motor neurone → effector → response
Look closely: the impulse travels only as far as the spinal cord. The relay neurone connects the sensory neurone straight to the motor neurone — no trip up to the brain. That's exactly why reflexes are:
- rapid — fewer synapses, no decision-making in the brain
- automatic — no conscious thought required
- protective — they happen before you even feel pain
A classic exam example: you touch a hot object. Pain/temperature receptors in the skin detect the stimulus. A sensory neurone carries the impulse to the spinal cord. A relay neurone connects the sensory neurone to a motor neurone. The motor neurone transmits the impulse to the effector — a bicep muscle — which contracts and pulls your hand away. The brain only finds out afterwards — which is when you feel the pain.
Reflex vs voluntary response
Not every response is a reflex. If you touch something that's just slightly warm — your morning coffee mug — the impulse still goes to the CNS, but the brain processes it consciously, decides whether the temperature is bearable, and tells the muscles what to do. That involves many more synapses (and the conscious cerebral cortex), so it's slower — but it gives the brain the option to choose how to respond.
For a voluntary action, the OCR marking phrase chain is: receptor detects stimulus → sensory neurone carries impulse to the CNS → relay neurone in the CNS → motor neurone carries impulse to the effector.
The brain (Higher tier)
The brain is made of billions of interconnected neurones. Three regions you need:
- Cerebral cortex — the wrinkled outer layer; controls consciousness, intelligence, memory, language.
- Cerebellum — at the back, below the cortex; controls balance and coordination of muscle movements.
- Medulla — at the base, where the brain meets the spinal cord; controls unconscious activities such as heart rate and breathing.
Neuroscientists study the brain by: (1) examining patients with brain damage to see which functions are lost; (2) electrically stimulating specific regions in patients undergoing brain surgery; (3) MRI scans that produce detailed images of brain structure, and functional MRI that shows which regions are active during particular tasks. Investigating the brain is difficult because it is incredibly complex, surrounded by the skull, and damaging it during research can cause permanent harm.
Exam tips
- For any reflex-arc question, write the full pathway in OCR order: receptor detects stimulus → sensory neurone carries impulse to the spinal cord → relay neurone connects sensory to motor → motor neurone transmits impulse to the effector. Each is potentially a mark.
- Always state the LOCATION of the relay neurone (in the spinal cord / in the CNS) — OCR examiners reward this specifically.
- When asked WHY reflexes matter, use the trio 'rapid', 'automatic', 'protects from damage' plus the killer phrase 'does not involve the conscious part of the brain'.
- For a voluntary action, the OCR marking phrase chain is: receptor detects stimulus → sensory neurone carries impulse to the CNS → relay neurone in the CNS → motor neurone carries impulse to the effector.
- Effectors are muscles OR glands — OCR phrasing is 'effector is a muscle or gland producing the response'.
- On synapse questions, say neurotransmitter is RELEASED FROM VESICLES, DIFFUSES across the cleft, and BINDS TO RECEPTORS on the postsynaptic membrane.
- On a 'nervous vs endocrine' compare question, hit all four OCR phrases: nervous uses electrical/nerve impulses; nervous acts on a specific named effector; nervous response is fast/rapid; endocrine response is slower.
Mark-scheme phrasing
Common misconceptions
- —
- —
- —
- —
Worked example
Question:
Answer:
Frequently asked questions
What is the difference between the nervous and endocrine systems?
Both coordinate the body, but they use different signals. The NERVOUS system uses electrical impulses along neurones — signals are FAST (milliseconds), travel along a precise pathway, and have short-lasting effects. The ENDOCRINE system uses chemical hormones released into the BLOOD — signals are SLOWER to start, travel everywhere, but only affect target organs and last much longer. Reflexes use only the nervous system; long-term changes like growth and reproduction use mostly hormones; many situations (e.g. stress) use both.
Why don't reflexes go through the brain?
Speed and protection. Sending an impulse up to the brain, having the brain process it, and sending the response back down would take far too long when something is damaging the body. The reflex arc short-circuits this: the impulse goes only as far as the spinal cord, where a relay neurone hands it straight to a motor neurone. The brain still finds out — but afterwards. That's why you feel pain a moment AFTER you've already pulled away.
What's the difference between a sensory, relay and motor neurone?
SENSORY: transmits impulses FROM a receptor TO the CNS. Cell body sits in the middle of the neurone. Long dendron + long axon. RELAY: short neurone INSIDE the CNS (usually spinal cord); passes the impulse from sensory to motor. No myelin. MOTOR: transmits impulses FROM the relay neurone/CNS TO an effector (muscle or gland). Cell body at one end with many dendrites; long axon stretches out to the effector. All three appear in the reflex arc, in that order.
How does a synapse work?
Neurones don't touch — there's a tiny gap called the synaptic cleft. When an electrical impulse arrives at the end of one neurone, it triggers vesicles to release a CHEMICAL called a neurotransmitter. The neurotransmitter DIFFUSES across the gap and BINDS to specific receptors on the next neurone's membrane, generating a new electrical impulse on the other side. The whole step takes a couple of milliseconds — but each synapse adds a small delay, which is why reflexes (few synapses) are faster than conscious responses (many synapses).
Is the pupil shrinking in bright light a reflex?
Yes — the pupil reflex is a classic reflex action. Light receptors in the retina detect the bright stimulus, impulses travel along sensory neurones (via the optic nerve) into the brain stem, a relay-like pathway sends impulses out via motor neurones to the iris muscles, which contract and shrink the pupil. It's automatic, rapid and protective — too much light could damage the retina.