IB Biology HLCoordinating Body SystemsPaper 1 & 2~11 min read
The Nervous System
Right now your body is measuring the salt in your blood, the pressure in your arteries, the angle of your knees and the temperature of the air. You are aware of almost none of it. The nervous system is doing two jobs at once: giving you a conscious picture of the world, and quietly running the parts you never think about.
📚 What you need to know
The brain is the main integration organ. Learn the jobs of the cerebral cortex, cerebellum, medulla, hypothalamus and pituitary gland.
The spinal cord is an integration centre in its own right, for unconscious processes.
Grey matter holds cell bodies and synapses; white matter holds myelinated axons.
Input comes from receptors, which are transducers — they convert one form of energy into an electrical impulse.
Output goes along motor neurones to effectors. At a muscle, the junction is a neuromuscular junction.
You should be able to write the sequence from ACh release to myosin-binding sites being exposed.
The brain as an integration organ
The brain is billions of interconnected neurones, and different regions do different jobs. You are not expected to know fine detail — you are expected to match a region to a function without hesitating.
Cerebral cortex — the outer layer, divided into two hemispheres and highly folded. Handles the higher-order processes: intelligence, memory, consciousness, personality.
Cerebellum — sits underneath the cortex. Responsible for balance, muscle coordination and movement.
Brainstem — relays messages between the cortex, the cerebellum and the spinal cord. The key part is the medulla, which controls unconscious activities such as heart rate and breathing.
Hypothalamus — regulates body temperature, and produces hormones that control the pituitary gland.
Pituitary gland — produces many hormones, including FSH and LH for the menstrual cycle.
Two of these are endocrine glands. The hypothalamus and pituitary are parts of the brain and parts of the endocrine system. That is exactly the integration this topic is about, so it comes up often.
Input: what the brain is listening to
Before the brain can coordinate anything it needs information. That comes from receptors, and it is worth splitting them by whether you are aware of them.
Receptor
Detects
Where
Level
Photoreceptors
Light
Retina of the eye
Conscious
Chemoreceptors
Chemicals (taste)
Tongue
Conscious
Thermoreceptors
Temperature change
Skin
Conscious
Mechanoreceptors
Sound vibrations
Inner ear
Conscious
Osmoreceptors
Water content of blood
Carotid arteries, hypothalamus
Unconscious
Baroreceptors
Blood pressure
Carotid arteries, aorta
Unconscious
Proprioceptors
Balance and movement
Muscles and joints
Unconscious
The spinal cord as an integration centre
The spinal cord is part of the CNS, and most of the time it acts as a cable between the body and the brain. But it can also process information on its own, without the brain, and that is what makes it an integration centre.
Sensory information arrives along a sensory neurone, is processed immediately, and leaves along a motor neurone. That pathway is a reflex arc. The brain is not involved in the decision, so this is unconscious control directed by the spinal cord alone.
There are two tissue types inside it:
White matter — mainly the axons of neurones carrying information to and from the brain.
Grey matter — the cell bodies, relay neurones and synapses that do the integrating and produce the reflex response.
🧠
Grey matter, grey cells
People say "use your grey cells" when they mean thinking. Grey matter is where the processing happens — cell bodies and synapses. White matter is white because of the fatty myelin on the axons, and axons are just wiring. Grey thinks, white transmits.
If information is processed at the conscious level instead, the cerebrum is involved. That is the difference between flinching and deciding.
Input through sensory neurones
Every neural pathway begins with a receptor: a specialised cell that detects a change in the environment. Receptor cells are transducers. They take energy in one form — light, heat, sound, a chemical — and convert it into an electrical impulse in a sensory neurone.
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Where the word comes from
Trans means across and ducere means to lead. A transducer leads energy across from one form into another. A microphone is a transducer for sound; a photoreceptor is a transducer for light.
Not all receptors are the same kind of thing. Some, such as photoreceptors in the eye and chemoreceptors in the taste buds, are separate specialised cells that influence a nearby sensory neurone. Others, such as some touch receptors, are simply the bare endings of the sensory neurone itself.
Stimulating a receptor
When a receptor cell is stimulated it becomes depolarised. Whether anything happens next depends on how strong the stimulus was:
Weak stimulus — the cell is not sufficiently depolarised, and no impulse is sent.
Strong enough stimulus — an action potential is initiated in the sensory neurone and the impulse travels to the CNS.
The taste bud example
This is the sequence IB uses, so learn it in order. The tongue is covered in bumps called papillae, each covered in taste buds, each containing chemoreceptors covered with receptor proteins. Different receptor proteins detect different chemicals; the salt ones respond directly to sodium ions.
Sodium ions diffuse through highly selective channel proteins in the membranes of the microvilli of the chemoreceptor.
The chemoreceptor membrane depolarises. The rise in positive charge inside is called the receptor potential.
If the receptor potential is large enough, voltage-gated calcium ion channels open.
Calcium ions enter the cytoplasm and trigger exocytosis of vesicles of neurotransmitter from the basal membrane.
The neurotransmitter stimulates an action potential in the sensory neurone, which carries the impulse to the brain.
Notice the shape of it. Ions in, depolarisation, calcium in, vesicles out, impulse away. That is the same shape as a synapse and the same shape as a neuromuscular junction. Learn the pattern once and you have all three.
Output through motor neurones
Once the CNS has processed the information, the cerebrum uses it to plan movement — the region responsible is the motor cortex. Motor neurones then carry action potentials to muscles.
A motor neurone ends at a neuromuscular junction (also called a motor end plate), between the terminal branches of the neurone and a muscle cell. There are many of them spread across the muscle fibres, and they work in almost exactly the same way as a synapse.
Worked examples
WE 1
Identify receptors and classify the input
A person walks from a dark room into bright sunlight, and at the same time their blood pressure falls slightly as they stand up. Name the receptor involved in each case and state whether the input is conscious or unconscious. (3 marks)
Step 1: the lightPhotoreceptors in the retina of the eye detect the change in light intensity. This is a conscious input — you see the brightness.
Step 2: the blood pressureBaroreceptors in the carotid arteries and the aorta detect the fall in pressure. This is an unconscious input.
Step 3: state the shared principle
Both receptors act as transducers, converting the stimulus into an electrical impulse in a sensory neurone.
Photoreceptors, conscious; baroreceptors, unconsciousthe word "receptor" on its own is not a name. Use the full term, and remember that baro is pressure while osmo is water
WE 2
Describe transmission at a neuromuscular junction
Describe what happens between an action potential arriving at a motor neurone terminal and sodium ions entering the muscle fibre. (4 marks)
Step 1: calcium in
The action potential reaching the presynaptic membrane causes calcium ions to diffuse into the neurone.
Step 2: vesicles fuse
Calcium stimulates vesicles containing acetylcholine to fuse with the presynaptic membrane, releasing ACh.
Step 3: diffusion across
ACh diffuses across the neuromuscular junction to the muscle fibre.
Step 4: binding and opening
ACh binds to receptor proteins on the sarcolemma, causing ion channels to open so sodium ions diffuse in.
Calcium in, ACh released, ACh diffuses, receptors open sodium channelsfour marks means four distinct steps. Write them as four short sentences and you cannot accidentally merge two into one
WE 3
Justify calling the spinal cord an integration centre
Explain why the spinal cord is described as an integration centre rather than simply a pathway. (3 marks)
Step 1: what a pathway would mean
A pure pathway would only carry impulses between the body and the brain, with all processing done elsewhere.
Step 2: what the spinal cord actually does
Sensory information entering the spinal cord can be processed there and sent straight back out along a motor neurone, without the brain being involved.
Step 3: name the structure and the pathway
This happens in the grey matter, which contains the relay neurones and synapses, and the pathway is called a reflex arc.
It processes information independently, so it integrates rather than only relayingthe word "unconscious" is worth including — it is what distinguishes spinal integration from cerebral integration
💡 Exam tips
You are not required to know complex brain detail such as slow-acting neurotransmitters. Learn the five regions well instead.
Match region to function in one line each. "Cerebellum: balance and coordination of movement" is a complete answer.
Grey matter contains cell bodies; white matter contains axons. Say which, not just the colour.
Use the word transducer when describing what a receptor does. It is the term that earns the mark.
For the neuromuscular junction sequence, name acetylcholine and the sarcolemma explicitly.
⚠ Common mistakes
Saying the cerebellum initiates movement. It coordinates movement. The motor cortex initiates it.
Placing the medulla in the cerebrum. The medulla is part of the brainstem, at the base of the brain.
Calling the pituitary part of the nervous system only. It is a gland — it belongs to both.
Saying receptors send impulses. Many receptors stimulate a sensory neurone to send the impulse.
Writing that the brain decides in a reflex arc. It does not. That is the whole point of spinal integration.
Mixing up baroreceptors and osmoreceptors. Baro is pressure, osmo is water content.
Saying calcium causes contraction directly. Calcium binds troponin, which moves tropomyosin, which exposes the binding sites.
Up next: Reflex Arcs & Movement Control — the pain reflex step by step, why you feel the pain only after your hand has already moved, and how the cerebellum keeps a movement on track once it has started.
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