Integration of body systems
🎯What you need to be able to do
- Explain system integration and the hierarchy of cells, tissues, organs and systems, including emergent properties.
- Distinguish the roles of the nervous and endocrine systems, and explain the role of the blood in transporting materials between organs.
- Outline the roles of the brain, spinal cord, sensory and motor neurons and nerves.
- Describe a pain reflex arc, and the role of the cerebellum.
- Explain the control of sleep by melatonin, and the effects of adrenaline.
- Outline control of the endocrine system by the hypothalamus and pituitary.
- Explain feedback control of heart rate and ventilation rate, and control of peristalsis.
- AHL Observe and measure tropisms, and explain phototropism in terms of auxin, efflux carriers and cell elongation.
- AHL Explain the interaction of auxin and cytokinin, and positive feedback in fruit ripening by ethylene.
📚The biology
System integration
In any system made of parts, the parts must be coordinated for the system to perform its overall function. In living organisms, this integration is essential: organs working independently, at their own pace, would not keep an organism alive.
A multicellular organism is a hierarchy of subsystems: cells form tissues, tissues form organs, and organs work together in organ systems, all integrated into one organism. At each level, interactions between the parts produce emergent properties that the parts do not have alone. A cheetah becomes an effective predator only through the integration of its systems: the nervous system detects prey and coordinates movement, muscles and skeleton produce speed, the respiratory and circulatory systems supply oxygen, and adrenaline prepares the whole body for the chase.
Nerves, hormones and the blood
Messages are electrical impulses along neurons, with neurotransmitters at synapses. Very fast, short-lived, and sent to specific cells. Suits rapid responses: movement, reflexes.
Messages are hormones secreted into the blood. Slower, often longer lasting, and widespread, affecting any cell with receptors. Suits long-term processes: growth, reproduction, metabolism.
The blood system integrates organs by transporting materials between them. For example: glucose absorbed in the small intestine is carried to the liver for storage and to muscles for respiration; oxygen from the lungs is carried to every tissue; urea made in the liver is carried to the kidneys for excretion; hormones made in glands are carried to their targets. Energy, in the form of heat from active muscles and the liver, is also distributed by the blood.
The brain
The brain is the central organ that integrates information. It receives input from many sensory receptors at once, combines it — sight, sound, balance, memory of past events — and processes it to decide on responses. It is also where learning and memory happen, through changes in the strength and number of synaptic connections between neurons.
The spinal cord
The spinal cord is an integrating centre for unconscious processes. Conscious processes are those we are aware of and can control, such as deciding to pick up a cup; they involve the cerebral hemispheres of the brain. Unconscious processes happen without our awareness or decision, such as reflexes; many are coordinated by the spinal cord without needing the brain.
Sensory neurons, motor neurons and nerves
Carry impulses from receptor cells to the central nervous system (spinal cord and brain), providing input.
Carry impulses from the CNS, including the cerebral hemispheres, to muscles, stimulating them to contract.
Bundles of nerve fibres from both sensory and motor neurons, surrounded by a protective sheath of connective tissue. A transverse section shows many fibres, some myelinated (surrounded by a ring of myelin) and some unmyelinated.
The pain reflex arc
A reflex is a rapid, involuntary response to a stimulus. The pathway is a reflex arc. Taking your hand away from a hot object:
- A free nerve ending of a sensory neuron in the skin of the hand acts as a pain receptor and is stimulated.
- Impulses pass along the sensory neuron to the spinal cord, entering through the dorsal root.
- In the grey matter of the spinal cord, the sensory neuron synapses with a single interneuron (relay neuron).
- The interneuron synapses with a motor neuron, which carries impulses out of the spinal cord to the arm.
- The effector, a skeletal muscle (the biceps), contracts, pulling the hand away.
Because the pathway goes through the spinal cord and has few synapses, the response is very fast and does not wait for a conscious decision. Impulses are also sent up to the brain, so you feel pain a moment later.
The cerebellum
The cerebellum, at the back of the brain, coordinates skeletal muscle contraction and balance. It does not start movements, but it receives information about the position of the body and the movements being made, and fine-tunes the timing and strength of contractions so that movements are smooth, accurate and balanced. Damage to the cerebellum causes jerky, uncoordinated movement.
Melatonin and sleep
Melatonin is a hormone secreted by the pineal gland in the brain. Its secretion follows a diurnal (daily) pattern: it is low during daylight and rises in the evening as it gets dark, peaking in the night. Light detected by the eyes inhibits melatonin release. Rising melatonin causes drowsiness and helps initiate sleep; falling melatonin in the morning helps waking. It is part of the body’s circadian rhythm, a roughly 24-hour cycle, keeping the sleep–wake cycle synchronized with day and night. Travel across time zones disrupts this pattern, causing jet lag.
Adrenaline and vigorous activity
The adrenal glands secrete adrenaline in response to stress, fear or excitement. It has widespread effects that together prepare the body for intense muscle contraction (“fight or flight”):
increases heart rate and stroke volume, raising blood flow
bronchioles dilate, and ventilation rate increases, supplying more oxygen
glycogen is broken down to glucose, raising blood glucose for respiration
blood is diverted from the gut and skin to skeletal muscles
pupils dilate
The hypothalamus and pituitary gland
The hypothalamus, a region at the base of the brain, links the nervous and endocrine systems. It receives information from many parts of the body and brain, and controls the pituitary gland directly below it.
- The hypothalamus secretes releasing hormones that stimulate or inhibit the pituitary’s secretion of hormones; neurons from the hypothalamus also extend into the pituitary and release hormones there.
- The pituitary secretes hormones such as growth hormone, TSH, FSH, LH and ADH, many of which control other endocrine glands, such as the thyroid, the ovaries and the testes.
This makes the hypothalamus and pituitary the control centre of the endocrine system (D3.1, D3.3).
Feedback control of heart rate
Pressure receptors in the walls of the aorta and the carotid arteries, monitoring blood pressure.
In the aorta, carotid arteries and brainstem, monitoring blood pH and the concentrations of oxygen and carbon dioxide.
Both send impulses to the cardiovascular centre in the medulla of the brainstem, which coordinates the response and sends impulses along nerves to the heart’s pacemaker:
- During exercise, CO2 rises and pH falls. The medulla sends more impulses along the sympathetic nerve, increasing heart rate and stroke volume.
- If blood pressure rises too high, baroreceptors send more impulses, and the medulla sends impulses along the vagus nerve, slowing the heart.
Each response reduces the change that caused it: negative feedback.
Feedback control of ventilation rate
During exercise, muscles produce more carbon dioxide. CO2 dissolves in blood plasma to form carbonic acid, which releases hydrogen ions, so blood pH falls. (Lactate from anaerobic respiration lowers pH further.) Chemoreceptors in the brainstem (and in the aorta and carotid arteries) detect the fall in pH. The respiratory centre in the brainstem sends more frequent impulses to the diaphragm and intercostal muscles, increasing the rate and depth of ventilation. More CO2 is removed, and pH returns towards normal.
Control of peristalsis
Peristalsis is the wave of muscle contraction that moves food along the gut.
- Swallowing is initiated voluntarily, under control of the central nervous system.
- From the oesophagus to the rectum, peristalsis is involuntary, controlled by the enteric nervous system — a network of neurons in the wall of the gut itself. It ensures that contractions are coordinated so material passes along steadily.
- Egestion of faeces is again under voluntary control by the CNS.
Tropisms AHL
A tropism is a directional growth response of a plant to a directional stimulus. You should have observed tropic responses in seedlings, recording:
- qualitative data — descriptions and labelled diagrams of the direction of growth;
- quantitative data — for example the angle of curvature of each seedling, measured with a protractor or from photographs using image software.
Precision is limited by how exactly angles can be read and where the curve is judged to begin; accuracy by systematic errors such as parallax. Using image analysis, measuring many seedlings, and repeating the experiment improve precision, accuracy and reliability.
Phototropism AHL
Positive phototropism is growth of a plant shoot towards light coming from one side. It allows shoots to position leaves to capture more light for photosynthesis.
Phytohormones AHL
Plants have no nervous system; they coordinate growth, development and responses to stimuli with phytohormones (plant hormones). A variety of chemicals act as phytohormones, including auxin, cytokinins, gibberellins, abscisic acid and ethylene.
Auxin efflux carriers AHL
Auxin is made in shoot tips. It can diffuse freely into plant cells, but once inside it becomes charged and cannot diffuse out. It leaves only through auxin efflux carriers, membrane proteins that actively transport it out of the cell.
A cell can position its efflux carriers on one side of the cell. When all the cells in a tissue concentrate their carriers on the same side, auxin is pumped from cell to cell in one direction, and it becomes concentrated in one part of the plant. In a shoot lit from one side, efflux carriers are repositioned so that auxin moves towards the shaded side.
How auxin promotes growth AHL
Auxin stimulates target cells to secrete hydrogen ions into the apoplast (the cell walls and spaces outside the membrane). The cell wall becomes more acidic, which loosens the cross-links between cellulose molecules. The wall becomes more flexible, so as the cell takes in water by osmosis it elongates.
In phototropism, more auxin on the shaded side means cells there elongate faster than cells on the lit side. The difference in growth rate bends the shoot towards the light.
Auxin and cytokinin AHL
Root tips produce cytokinin, which is transported up to the shoots; shoot tips produce auxin, which is transported down to the roots. Each tells the other part of the plant how it is growing. A vigorously growing root system sends more cytokinin, stimulating shoot growth; a vigorously growing shoot sends more auxin, stimulating root growth. These interactions keep root and shoot growth integrated, so that neither outgrows the other’s ability to supply it with water and minerals or with sugars.
Positive feedback in fruit ripening AHL
Ethylene (IUPAC name ethene) is a gaseous phytohormone that stimulates the changes of ripening: softening, conversion of starch to sugars, colour change and aroma. Ripening itself stimulates more ethylene production. This is positive feedback: once ripening begins, it accelerates. Because ethylene is a gas, it also spreads to neighbouring fruit and triggers them too.
The benefit is that ripening is rapid and synchronized across a plant, so that a crop of ripe fruit is available at once, attracting animals that eat the fruit and disperse the seeds. It is also why one ripe banana in a bag makes the rest ripen faster.
✏️Worked example
(b) AHL Five seedlings were lit from one side for 24 hours. Their angles of curvature were 32°, 35°, 28°, 30° and 35°. Calculate the mean and range, and explain the curvature.
(a)
During exercise, muscles respire faster and produce more carbon dioxide, which lowers blood pH. Chemoreceptors in the aorta, carotid arteries and brainstem detect the fall in pH (and rise in CO2) and send impulses to the medulla. The medulla sends more impulses along nerves to the sinoatrial node (pacemaker), increasing heart rate and stroke volume. Adrenaline released during exercise adds to the effect. More blood delivers more oxygen and removes more CO2, reducing the stimulus: negative feedback.
(b) Mean = (32 + 35 + 28 + 30 + 35) ÷ 5 = 32°; range = 35 − 28 = 7°.
Light from one side causes auxin efflux carriers to move auxin towards the shaded side of the shoot. Auxin causes cells to secrete H+ into their walls, acidifying them and loosening cross-links between cellulose molecules, so cells on the shaded side elongate more. Unequal elongation bends the shoot towards the light: positive phototropism.
📝Practise
Work through these on paper, then reveal the answer. Questions 5 and 6 are AHL.
1. Distinguish between the nervous system and the endocrine system as means of sending messages.
2. Describe the pathway of a pain reflex arc involving the hand.
3. Explain how melatonin helps to regulate sleep.
4. Explain how ventilation rate is increased during exercise.
5. AHL Explain how auxin efflux carriers establish a concentration gradient of auxin in a plant tissue.
6. AHL Explain the benefit of positive feedback in the ripening of fruit.
🔗Go deeper — other people’s work
These are external resources, not mine. If one stops working, tell me and everything above it on this page still stands.
- Queensland Brain Institute — accessible pages on the cerebellum, reflexes and the circadian clock.
- Science & Plants for Schools (SAPS) — protocols for phototropism experiments with cress and oat seedlings.
- You and Your Hormones (Society for Endocrinology) — clear profiles of melatonin, adrenaline and the pituitary hormones.