Take your hand near a hot pan and it jerks back before you have even finished the thought “that is hot”. Now think about the last time you felt genuinely nervous before a test — heart thumping, palms damp, stomach tight. Two completely different kinds of control, both happening inside the same body. That contrast is the whole of this chapter, and once you see it clearly, Control and Coordination stops being a list of gland names to memorise and becomes one of the easiest scoring chapters in Class 10 Science.
If you have opened this page because the chapter feels like a jungle of hard words — neuron, synapse, cerebellum, thyroxine, gibberellin, phototropism — take a breath. You are not behind. Almost every student finds this chapter heavy on the first read, because it is the first time in school science that biology asks you to hold two systems in your head at once. We are going to build it slowly, from zero, with everyday pictures you already understand. No prior knowledge is assumed beyond what you learned in the Life Processes chapter notes for Class 10 Science.
These notes are written to do three jobs at the same time. First, explain every idea plainly. Second, show you exactly how a board examiner awards marks, using worked model answers where the mark-earning phrases are pointed out. Third, give you original practice with answers you can check yourself. Along the way you will find a full reflex arc diagram explanation, complete plant hormones Class 10 notes, a clean table on the difference between nervous and hormonal control, and a set of control and coordination class 10 important questions at the end.
One more thing before we start. This chapter has a reputation for being “theory you just have to cram”. That is not true, and cramming is exactly why students lose marks in it. Every single fact in this chapter follows from one idea: a living body must sense a change and then do something useful about it. Hold that sentence, and the rest is just detail hanging off it.
What You’ll Learn in These Control and Coordination Class 10 Notes
- Why Every Living Thing Needs Control and Coordination
- The Neuron: How One Nerve Cell Carries a Message
- The Synapse: Where One Neuron Hands Over to the Next
- Reflex Action and the Reflex Arc — Diagram Explanation
- The Central Nervous System: Brain and Spinal Cord
- Parts of the Human Brain and What Each One Controls
- From Nerve Signal to Actual Movement: How Muscles Respond
- Movement in Plants: Tropic and Nastic Movements
- Plant Hormones Class 10 Notes: Auxin, Gibberellin, Cytokinin, Abscisic Acid
- Chemical Coordination: Animal Hormones and the Endocrine Glands
- Feedback Control: How the Body Keeps Hormone Levels Steady
- Difference Between Nervous and Hormonal Control
- Control and Coordination Class 10 Important Questions: Exam Strategy
- Practice Worksheet with Answers
Your Game Plan
Work through the chapter in this order. It is deliberately not the order in which the ideas appear in most books, because the human nervous system makes far more sense once you have already accepted the simple idea of a stimulus and a response.
- Get the big idea first: stimulus, receptor, control centre, effector, response. Ten minutes.
- Learn the neuron and the synapse. Draw the message path three times from memory.
- Master the reflex arc. It is the single most asked diagram in this chapter.
- Do the brain: three parts, and one job list for each. Use the memory device given below.
- Switch to plants: tropic versus nastic first, then the four hormones.
- Come back to animals for the endocrine glands. Build the gland-hormone-effect table yourself on one sheet.
- Finish with the nervous-versus-hormonal comparison and the feedback idea. These two carry most of the higher-order questions.
- Attempt the worksheet at the end with the answers covered. Only then check.
Study Notes
1. Why Every Living Thing Needs Control and Coordination
Start with something you can picture. A cricket ball is coming at your face. In under half a second your eyes register it, your neck turns, your arms come up, your fingers open, your feet shift your weight, and your breathing pauses. Dozens of separate body parts did dozens of separate things — and they did them in the right order, at the right moment, in the right amount. That is coordination. Something inside you took charge of many parts at once. That is control.
Now shrink the example. A single-celled organism like an amoeba does not need much of this. It has one cell, so whatever the cell senses, the cell itself deals with. But you are made of trillions of cells sitting in different places doing different jobs. A muscle cell in your calf has no idea what your eye has just seen. Unless there is a communication system, your body would behave like a school with no bell, no notices and no teachers — every classroom doing its own thing, no assembly ever happening.
So multicellular life had to invent messaging. Animals invented two systems, and they are the backbone of this chapter:
- The nervous system — electrical impulses travelling along nerve cells. Fast, targeted, brief.
- The endocrine system — chemical messengers called hormones, carried by blood. Slower, widespread, long lasting.
Plants took a different route. They have no nerves and no brain at all, yet a creeper still finds a wall, a root still finds water, and a touch-me-not leaf still folds when you poke it. Plants coordinate entirely through chemical signals and through controlled movement of water inside cells. We will come to that in detail later, but notice the honest point already: coordination does not require a nervous system — it requires a signal. The same stimulus-and-response logic runs through the Our Environment chapter notes for Class 10 Science, where whole ecosystems, rather than single bodies, respond to a change.
The five words that unlock every question in this chapter
Learn these five words in this order and most short-answer questions write themselves.
| Term | What it means in plain words | Everyday example |
|---|---|---|
| Stimulus | Any change in the surroundings or inside the body that a living thing can detect | A sudden loud horn |
| Receptor | The specialised cell or organ that detects that particular stimulus | Phonoreceptors in the ear |
| Coordinator / control centre | The part that receives the message and decides the response | Brain, or spinal cord in a reflex |
| Effector | The muscle or gland that actually carries out the action | Neck muscles that turn your head |
| Response | The visible change or action that results | You turn towards the sound |
Types of receptors you should be able to name
Receptors are named after the kind of stimulus they detect. The naming is logical, so do not memorise blindly — read the first half of each word.
- Photoreceptors — detect light. Found in the eye.
- Phonoreceptors — detect sound. Found in the inner ear. The inner ear is also responsible for balance.
- Olfactory receptors — detect smell. Found in the nose.
- Gustatory receptors — detect taste. Found in the tongue.
- Thermoreceptors — detect temperature. Found in the skin.
Here is a small point that pays in exams. Receptors are delicate, and they can stop working properly. If the olfactory receptors are affected — which happens during a bad cold — food tastes bland even though the tongue is perfectly fine. That is because what we casually call “taste” is mostly smell. Examiners like this example because it tests whether you understood receptors or merely listed them.
Model answer. Control and coordination is the working together of different organs and organ systems of the body in a properly regulated way so that the organism responds correctly to changes in its surroundings. [1 mark — definition covering both “working together” and “response to change”]
It is necessary in multicellular organisms because their body is made of a very large number of cells that are specialised for different functions and are located far apart. A cell in one part of the body cannot directly sense what is happening at another part. [1 mark — reason based on division of labour and distance]
Therefore a communication system is required so that information from receptors reaches the effectors quickly and the whole body acts as a single unit. In animals this is done by the nervous system and the endocrine system, and in plants by chemical signals. [1 mark — naming the systems]
Model answer. The flavour of food is detected jointly by the gustatory receptors of the tongue and the olfactory receptors of the nose. [1 mark — both receptor types named correctly]
During a heavy cold the nasal passage is blocked with mucus, so molecules from the food cannot reach the olfactory receptors and the smell information is lost. Since a large part of what we call taste is actually smell, the food seems tasteless even though the gustatory receptors are working normally. [1 mark — the blocked-smell explanation]
Why it works. Notice the shape of both answers. Each one names the technical terms, then explains the mechanism, then closes the loop back to the question. Examiners are given a marking scheme built from key phrases, not from beautiful writing. Your job is to make sure each key phrase is visibly present in its own sentence, so the examiner cannot miss it.
2. The Neuron: How One Nerve Cell Carries a Message
A neuron, also called a nerve cell, is the longest cell in the human body and it exists for one purpose: to carry information from one place to another. Do not let the word frighten you. A neuron is basically a cell that has been stretched out into a wire, with a bushy antenna at one end and a delivery point at the other.
Think of it as a courier on a very long, very narrow street:
- Dendrites are the fine branching threads at one end. They are the receiving antennae. Information arrives here.
- The cell body (cyton) contains the nucleus and the cytoplasm. It is the office — it keeps the cell alive and passes the signal onward.
- The axon is the single long fibre leading away from the cell body. This is the road. The electrical impulse travels down it.
- Nerve endings (axon terminals) are the fine branches at the far end. This is the delivery point where the message is handed over.
What actually travels along a neuron
This is where most students go slightly wrong, so read carefully. The story has a chemical beginning, an electrical middle, and a chemical end.
- Information is picked up at the tips of the dendrites of a nerve cell. This sets off a chemical reaction there.
- That chemical reaction creates an electrical impulse.
- The impulse travels from the dendrite to the cell body, and then along the axon to its end.
- At the end of the axon, the electrical impulse causes the release of chemicals into the tiny gap that follows.
- Those chemicals cross the gap and start a fresh electrical impulse in the dendrite of the next neuron.
So the signal is not purely electrical, and it is not purely chemical. It is electrical inside a neuron and chemical between neurons. If you can write that one line accurately, you have already covered a very commonly asked one-mark question.
Three kinds of neurons, by job
| Type of neuron | Carries the message | Easy way to remember |
|---|---|---|
| Sensory neuron | From the receptor to the central nervous system | Sensory = Sends in the news |
| Relay neuron (interneuron) | Within the brain or spinal cord, from one neuron to another | Relay = the middle-man inside |
| Motor neuron | From the central nervous system out to the effector (muscle or gland) | Motor = Moves something |
Model answer. Diagram showing dendrites, cell body with nucleus, axon and nerve endings, neatly labelled with a ruler. [2 marks — 1 for a correct outline, 1 for four correct labels]
Information from the environment is detected by a receptor and is picked up at the dendritic tip of a nerve cell. This sets off a chemical reaction that creates an electrical impulse. [1 mark — chemical reaction producing an electrical impulse]
The impulse travels from the dendrite to the cell body and then along the axon to its end. [1 mark — correct one-way route]
At the end of the axon the electrical impulse releases some chemicals. These chemicals cross the synapse, the tiny gap that separates this neuron from the next cell, and start a similar electrical impulse in the dendrite of the next neuron. [1 mark — chemical transfer across the synapse]
Model answer. Information is acquired at the dendritic tip of the nerve cell. [1 mark]
The impulse must travel along the axon from the cell body to its far end, where it is converted into a chemical signal for onward transmission. [1 mark]
Tip: a question phrased this precisely is worth exactly the words the textbook uses. Write “dendritic tip”, not “starting side”.
Why it works. The neuron question is almost always a diagram-plus-description question, and the diagram carries a large share of the marks. A rough, unlabelled sketch loses marks that the words cannot recover. Draw the axon as a long straight line, keep the labels outside the figure with straight leader lines, and never shade or colour it in a board answer sheet.
3. The Synapse: Where One Neuron Hands Over to the Next
Neurons do not touch each other. There is a microscopic gap between the nerve ending of one neuron and the dendrite of the next. That gap is called a synapse. A similar gap between a nerve ending and a muscle cell is called a neuromuscular junction.
Students often ask the sensible question: why leave a gap at all? Would a continuous wire not be faster? Yes, it would be faster — but it would also be stupid. A gap gives the body three things a continuous wire cannot give.
- One-way traffic. Chemicals are released only from the axon side, so the message cannot run backwards.
- A decision point. Many neurons can feed into the same gap. The next cell fires only if enough signal arrives, so weak or accidental signals get filtered out.
- Control. Because the handover is chemical, the body can strengthen, weaken or block a message here. This is also why some medicines and many poisons act at the synapse.
Model answer. A synapse is the small gap present between the nerve ending of one neuron and the dendrite of the next neuron. [1 mark — definition]
When the electrical impulse reaches the nerve ending of the first neuron, it causes the release of certain chemicals into this gap. [1 mark — release of chemicals]
These chemicals diffuse across the gap and start a similar electrical impulse in the dendrite of the next neuron. In this way the message is carried forward, and because the chemicals are released only on one side, the impulse can travel in one direction only. [1 mark — new impulse started, one-way transmission]
Why it works. Three marks means three distinct pieces of information. Definition, mechanism, consequence. If you build the habit of counting the marks and then writing that many separate sentences, your accuracy in biology jumps immediately without your knowledge changing at all.
4. Reflex Action and the Reflex Arc — Diagram Explanation
This is the most examined single idea in the chapter, so we will take it slowly and completely. If you understand this section properly, you can answer almost any question on it in any form — definition, diagram, comparison or reasoning.
A reflex action is a sudden, automatic and very fast response to a stimulus, which happens without any conscious thought. You do not decide to blink when dust flies at your eye. You do not decide to pull your foot back when you step on something sharp. The decision is taken lower down, at the spinal cord, and your brain finds out about it a fraction of a second afterwards.
The reflex arc is the actual path that the nerve signal follows during a reflex action. “Arc” is a good word for it, because the signal goes in, turns around and comes back out, like a ball bouncing off a wall.
The reflex arc pathway, step by step
- Stimulus — you touch a hot pan.
- Receptor — heat and pain receptors in the skin of your fingers detect it.
- Sensory neuron — carries the impulse from the receptor into the spinal cord.
- Relay neuron in the spinal cord — instantly passes the impulse across to the outgoing side. This is the turning point of the arc.
- Motor neuron — carries the impulse out of the spinal cord to the muscle.
- Effector — the arm muscle contracts.
- Response — your hand jerks away from the pan.
A short mnemonic that has saved many students in the exam hall: “Really Sharp Cats Move Everywhere” for Receptor, Sensory neuron, Cord (spinal), Motor neuron, Effector. Write those five words down the margin of your rough sheet the moment the exam starts, and the diagram cannot go wrong.
Why does the reflex not go up to the brain?
Here is the honest reasoning, and examiners love this question because it separates understanding from memorising.
The thinking part of the brain, the fore-brain, works by consulting a very large number of neurons connected in complicated ways. That consultation takes time. When a stimulus is dangerous — heat, a sharp point, something flying at your eye — even a small delay could mean a burn or an injury. So over the course of evolution, animals developed a short cut: the incoming sensory nerve and the outgoing motor nerve are connected directly at the level of the spinal cord, so the response can be produced without waiting for the brain’s decision.
Notice the careful wording: the brain is not cut out of the loop. Information does travel up to the brain, which is why you feel the pain and say “ouch” — but you feel it after your hand has already moved. The reflex simply does not wait for the reply.
Involuntary action: happens continuously without your decision, controlled mainly by the mid-brain and hind-brain. Heartbeat, breathing, digestion, blood pressure.
Reflex action: a sudden automatic response to a specific stimulus, usually managed by the spinal cord. Pulling your hand from a flame, blinking, knee jerk.
A reflex is involuntary, but not every involuntary action is a reflex — your heartbeat is involuntary yet it is not a response to a sudden outside stimulus.
| Point | Voluntary action | Involuntary action | Reflex action |
|---|---|---|---|
| Under your control? | Yes, fully | No | No |
| Main control centre | Fore-brain (motor areas) | Mid-brain and hind-brain | Spinal cord (usually) |
| Speed | Depends on your decision | Continuous, steady | Extremely fast |
| Needs an outside stimulus? | Not necessarily | No | Yes, a sudden one |
| Examples | Writing, running, talking | Heartbeat, peristalsis, breathing | Blinking, knee jerk, withdrawing hand |
Model answer. A reflex arc is the pathway along which a nerve impulse travels during a reflex action, from the receptor to the effector, passing through the spinal cord. [1 mark — definition mentioning receptor, spinal cord and effector]
Diagram: skin receptor → sensory neuron → spinal cord containing the relay neuron → motor neuron → arm muscle, with arrows showing the direction of the impulse. [2 marks — 1 for the correct pathway shape, 1 for correct labelling]
Heat receptors in the skin of the hand detect the hot object and the sensory neuron carries the impulse to the spinal cord. [1 mark]
In the spinal cord the impulse is passed by a relay neuron to the motor neuron, which carries it to the muscles of the arm. The muscles contract and the hand is pulled away. The brain receives the information afterwards, so the person feels the pain only after the hand has moved. [1 mark]
Model answer. Reflex actions allow the body to respond to a sudden and possibly harmful stimulus without any loss of time, because the response is produced at the level of the spinal cord itself. [1 mark]
The thinking process of the fore-brain involves a large number of neurons connected in complicated ways, and this takes comparatively more time. If every response had to wait for the brain to decide, a person touching a flame would be burnt before the hand moved. [1 mark]
A person without reflex arcs would still be alive but would be injured far more often, because protective responses such as blinking, coughing and withdrawing from pain would all become slow and deliberate. Reflex arcs therefore act as a rapid protective mechanism. [1 mark — reasoned judgement, not just yes or no]
Assertion (A): In a reflex action the brain is not involved at all.
Reason (R): Reflex arcs are completed at the level of the spinal cord so that the response is produced quickly.
Model answer: (d) A is false but R is true. [1 mark]
Working: R is a correct statement. A is false, because although the reflex response itself is produced by the spinal cord, the sensory information does continue upward and the brain is informed of the event a moment later. Assertion-reason questions in this chapter very often hinge on this exact word “at all”.
Why it works. Every one of these answers keeps the spinal cord as the hero and the brain as the late-arriving witness. That single mental picture prevents both of the classic errors: saying the brain controls the reflex, and saying the brain knows nothing about it.
5. The Central Nervous System: Brain and Spinal Cord
The human nervous system is usually described in two halves, and the split is very simple once you see it.
- The central nervous system (CNS) — the brain and the spinal cord. This is the head office. Decisions are taken here.
- The peripheral nervous system (PNS) — all the nerves that run out from the brain and the spinal cord to the rest of the body. This is the delivery network. It includes the cranial nerves, which arise from the brain, and the spinal nerves, which arise from the spinal cord.
Think of a large school. The principal’s office and the staff room form the central system where policy is decided; the corridors, bells and messengers that reach every classroom form the peripheral system. Neither is useful without the other.
How the body protects its control centre
Nervous tissue is soft and cannot repair itself easily, so the body protects it with unusual care. This is a favourite two-mark question.
- The brain sits inside a bony box, the cranium or skull.
- Inside that box the brain is surrounded by membranes and by a fluid-filled cushion of cerebrospinal fluid, which absorbs shocks the way water in a plastic bag would soften a knock.
- The spinal cord runs inside the vertebral column, the chain of bones we call the backbone.
Every part of that arrangement is a shock absorber. If you have ever carried a glass jar wrapped in a towel inside a tin box, you have used the same three-layer idea the body uses for its brain.
Model answer. The brain is enclosed in a bony box called the cranium, which protects it from external mechanical injury. [1 mark]
Inside this box the brain is contained in a fluid-filled balloon-like structure, the cerebrospinal fluid held within membranes, which acts as a cushion and absorbs shocks. [1 mark]
The spinal cord is enclosed and protected by the bones of the vertebral column, which run down the back. [1 mark]
Model answer. A reflex arc is completed inside the spinal cord, where the relay neuron connects the incoming sensory neuron to the outgoing motor neuron. [1 mark]
If the spinal cord is damaged, this connection is broken, so the impulse from the receptors in the leg cannot be transferred to the motor neuron and the leg muscles receive no instruction to contract. Therefore the withdrawal reflex is lost. [1 mark]
Sensation is also lost because the sensory information travels up to the brain through the spinal cord, and this upward pathway is broken as well. This shows that the spinal cord works both as a reflex centre and as a connecting link between the body and the brain. [1 mark]
Why it works. Example 10 is a case-based question, which now appears in every CBSE Science paper. The answer does not add outside medical detail; it simply applies the reflex arc you already learned to the situation described. That is exactly what “application of concepts” means in the question paper design.
6. Parts of the Human Brain and What Each One Controls
The brain is divided into three regions. Learn them as three departments of one organisation, each with a clear job description.
| Region | Main parts | What it controls |
|---|---|---|
| Fore-brain | Cerebrum, the largest part | Thinking, reasoning, memory, learning; separate areas for hearing, smell, sight and touch; association areas that put information together; the centre for hunger; control of voluntary actions through motor areas |
| Mid-brain | Connecting region between fore-brain and hind-brain | Involuntary actions such as changes in the size of the pupil of the eye and certain reflexes of the head, eyes and neck |
| Hind-brain | Cerebellum, pons, medulla | Cerebellum: precision of voluntary actions, posture and balance. Medulla: involuntary actions such as blood pressure, salivation and vomiting. Pons: regulation of breathing |
A memory device that actually sticks
Picture the brain as a three-storey building, and read it from top to bottom in the same order the words appear.
- Top floor — the boardroom (fore-brain). Where thinking, deciding and remembering happen, and where the order to move voluntarily is signed.
- Middle floor — the reception desk (mid-brain). Small, quiet, handles automatic adjustments such as the pupil widening in a dark room.
- Ground floor — the engine room (hind-brain). Nobody visits it, but it never stops: balance, breathing, blood pressure. If it shuts down, the building dies.
And for the cerebellum specifically, use this: “Cerebellum = Cycle.” The reason you can ride a bicycle without falling, thread a needle, or walk in a straight line is the cerebellum keeping your voluntary movements precise and your posture balanced. A person whose cerebellum is affected can still decide to pick up a glass, but the hand wobbles and overshoots.
Model answer. Posture and balance of the body are maintained by the cerebellum, which is a part of the hind-brain. [1 mark — correct part named]
The cerebellum is also responsible for the precision of voluntary actions. [1 mark]
If this region is damaged, the person would be unable to walk steadily or stand upright without swaying, and movements such as picking up a pencil or writing would become clumsy and imprecise, even though the person can still decide to make the movement. [1 mark — consequence explained]
Model answer. (a) Hunger — a centre in the fore-brain. [1 mark]
(b) Blood pressure, salivation and vomiting — the medulla, in the hind-brain. [1 mark]
(c) Change in the size of the pupil of the eye — the mid-brain. [1 mark]
Tip: for one-word questions like these, never write a long paragraph. Write the name, and if the question allows, add the region it belongs to. Extra unrelated writing wastes time you will want later.
Why it works. The brain section is graded almost entirely on precise naming. There is no partial credit for “somewhere in the back part of the brain”. Build a single clean table on one page of your notebook, revise only that table, and this topic becomes free marks. If you enjoyed how the body divides labour here, you will notice the same pattern in the way nutrition, respiration and transport are organised in Life Processes.
7. From Nerve Signal to Actual Movement: How Muscles Respond
So far we have followed the message. Now let us answer the question every curious student asks: an electrical impulse arrives at a muscle — how does that become a movement?
Muscle cells contain special proteins arranged in a particular pattern. When the nerve impulse reaches the muscle cell through the neuromuscular junction, these proteins change both their shape and their arrangement within the cell. Because the proteins rearrange, the muscle cell itself becomes shorter. Millions of cells shortening together is what we see as a muscle contracting, and a contracting muscle pulls on the bone it is attached to. That pull is the movement.
Two everyday consequences follow, and they are worth remembering because they explain things you already notice.
- Muscles pull, they never push. That is why they work in pairs: one muscle bends the joint, its partner straightens it.
- Nervous tissue can only act on cells it is connected to. Your nerves reach muscles and glands. They do not reach, say, the inside of a bone. So anything that must be controlled everywhere in the body cannot be done by nerves alone.
2. Recovery time. After a neuron carries one impulse, it takes a short time to reset itself before it can carry the next one. So nerve messages cannot be delivered endlessly without pause.
These two limitations are precisely why the body also needed a chemical messaging system. This is the logical bridge into hormones, and it is a favourite way for examiners to start a long-answer question.
Model answer. When a nerve impulse reaches a muscle, it is passed to the muscle cell across the neuromuscular junction. [1 mark]
Muscle cells contain special proteins which change their shape and their arrangement in response to this signal. [1 mark]
As a result the muscle cell becomes shorter, that is, the muscle contracts, and this pulls the attached body part so that movement is produced. [1 mark]
The nervous system alone cannot control everything, because electrical impulses can reach only those cells that are connected to nervous tissue, and a very large number of body cells are not so connected. [1 mark]
Also, once a neuron has carried an impulse it needs some time to reset before it can carry another one, so nervous control cannot be continuous over long periods. For these reasons the body also uses chemical communication through hormones. [1 mark]
Why it works. This answer earns five marks because it has five separate, checkable statements. Notice that it also ends by opening the door to the next topic. Examiners consistently reward answers that show the student understands why the syllabus moves from nerves to hormones, rather than treating them as two unrelated lists.
8. Movement in Plants: Tropic and Nastic Movements
Plants move. Not by walking, but they genuinely move — a sunflower turns, a tendril coils, a root dives towards damp soil, a touch-me-not leaf collapses the instant you brush it. Since plants have neither nerves nor muscles, all of this must happen some other way, and that is what makes this half of the chapter genuinely interesting.
Plant movements fall into two clean groups. Get this division right and the rest of the topic is straightforward.
| Point of difference | Tropic movement (growth dependent) | Nastic movement (growth independent) |
|---|---|---|
| Caused by | Unequal growth of cells on the two sides of the organ | Change in the amount of water in cells, making them swell or shrink |
| Direction | Depends on the direction of the stimulus | Independent of the direction of the stimulus |
| Speed | Slow, takes hours or days | Fast, may take only seconds |
| Reversible? | No, the growth is permanent | Yes, the plant part returns to its earlier position |
| Example | Shoot bending towards light; root growing downwards | Folding of the leaves of the touch-me-not plant when touched |
The tropisms you must be able to name
A tropism is named after the stimulus. “Positive” means growth towards the stimulus; “negative” means growth away from it.
| Tropism | Stimulus | What happens |
|---|---|---|
| Phototropism | Light | Shoot grows towards light (positive); root grows away from light (negative) |
| Geotropism | Gravity | Root grows downwards (positive); shoot grows upwards (negative) |
| Hydrotropism | Water | Roots grow towards a source of moisture (positive) |
| Chemotropism | A chemical | Growth of the pollen tube towards the ovule during fertilisation |
| Thigmotropism | Touch or contact with a support | A tendril coils around the support it touches |
How a tendril coils — a small mechanism worth knowing
When a tendril meets a support, the side of the tendril touching the object grows more slowly, while the side away from the object keeps growing at its normal rate. Because one side grows faster than the other, the tendril curves around and grips the support. It is exactly the same logic as phototropism — unequal growth on two sides — only the stimulus is touch instead of light.
Why the touch-me-not plant is different
When you touch the leaves of a touch-me-not plant, they fold within a second or two — far too fast for growth. What actually happens is that the plant moves water out of certain cells at the base of the leaflets. Losing water makes those cells shrink, and the leaflet drops. Since the change is only about water, it reverses on its own after a few minutes and the leaf opens again.
Notice also that the plant folds its leaves regardless of which side you touch it from. That is the giveaway for a nastic movement: the direction of the stimulus does not decide the direction of the response.
Model answer. The folding of the leaves of the touch-me-not plant is a movement that is independent of growth. It is caused by a change in the amount of water in the cells at the base of the leaflets, which makes them shrink, and it is quick and reversible. [1 mark]
The bending of a shoot towards light is a growth-dependent tropic movement. Cells on the side away from the light grow longer than those on the lit side, so the shoot bends. This is slow and permanent. [1 mark]
Another difference is direction: in the touch-me-not plant the response does not depend on the direction from which the plant is touched, whereas in phototropism the direction of bending is decided by the direction of the light. [1 mark]
Model answer. The movement involved is geotropism, a tropic movement in response to gravity. Since the room is dark, light plays no part here. [1 mark — naming and ruling out light]
The shoot curves upwards, that is, it grows away from the pull of gravity. This is negative geotropism. [1 mark]
The root curves downwards, growing in the direction of gravity, which is positive geotropism. This helps the root to reach deeper soil for water and anchorage, while the shoot rises towards the open air. [1 mark]
Model answer. Chemotropism — the growth of the pollen tube towards the ovule during fertilisation. The stimulus is a chemical released by the ovule. [1 mark]
Thigmotropism — the coiling of a tendril of a climbing plant around a support. The stimulus is touch or contact with the support. [1 mark]
Note: if you want to link this to another chapter, the pollen tube example connects neatly to what you studied about fertilisation in flowering plants.
Why it works. In every one of these answers, the word “growth” or “water” appears explicitly. That is the single distinguishing idea in this section, and marking schemes are built around it. If your answer describes what happened but never says whether growth was involved, you will usually lose a mark even though the description is correct.
9. Plant Hormones Class 10 Notes: Auxin, Gibberellin, Cytokinin, Abscisic Acid
Plants coordinate their growth using chemical compounds called plant hormones or phytohormones. They are made in one part of the plant, they diffuse to where they are needed, and they change how cells behave — usually how fast cells divide or how much they elongate.
There are four you must know for Class 10. Three of them push growth forward in different ways; the fourth one slows growth down. Learning them in that grouping is much easier than learning four unrelated names.
| Plant hormone | Main effect | Where it is prominent |
|---|---|---|
| Auxin | Helps cells to grow longer, that is, promotes cell elongation. Responsible for the bending seen in phototropism | Synthesised at the tip of the shoot |
| Gibberellin | Helps in the growth of the stem, causing stem elongation | Growing stems |
| Cytokinin | Promotes cell division | Present in greater concentration in areas of rapid cell division, such as in fruits and seeds |
| Abscisic acid | Inhibits growth. Its effects include the wilting of leaves and the closing of stomata | Produced under stress, for example during water shortage |
The four-hormone memory line
Say this to yourself once and it tends to stay: “Auxin lengthens, Gibberellin heightens, Cytokinin divides, Abscisic acid decides to stop.” Four verbs, four hormones, in alphabetical order of the hormone names. If you can only remember one thing about each hormone in the exam, remember the verb — almost every one-mark question in this section is asking for exactly that verb.
How auxin produces the bend in phototropism
This is the single most asked mechanism in the plant half of the chapter, so let us do it very carefully.
- Auxin is made at the tip of the shoot.
- When light falls on the shoot from one side only, the auxin diffuses away from the lit side towards the shaded side.
- Auxin makes cells grow longer. So the cells on the shaded side, which now have more auxin, elongate more than the cells on the lit side.
- One side of the shoot is now longer than the other, so the shoot bends — and because the shaded side is the longer one, the bend is towards the light.
Students often find step 4 counter-intuitive: more growth on the shaded side, yet the plant leans towards the light. Picture a marching line where the people on the outside take longer strides — the whole line curves inwards, away from the long strides. Same geometry.
Model answer. Auxin is a plant hormone synthesised at the tip of the shoot, and it helps the cells to grow longer. [1 mark — site of synthesis and function]
When light falls on the shoot from one side, auxin diffuses from the illuminated side towards the shaded side of the shoot. [1 mark — redistribution of auxin]
The greater concentration of auxin on the shaded side makes the cells there elongate more than the cells on the lighted side. As a result that side becomes longer and the shoot bends towards the light. This is called positive phototropism. [1 mark — unequal elongation causing the bend]
Model answer. (a) Cytokinin promotes cell division and is present in greater concentration in regions of rapid cell division such as fruits and seeds. [1 mark]
(b) Abscisic acid inhibits growth. [1 mark]
(c) Gibberellin helps in the growth of the stem. [1 mark]
Abscisic acid is useful during water shortage. It causes the stomata to close, which reduces the loss of water by transpiration, and it slows down growth so that the plant survives the stress period. [1 mark — a genuine situation, not just a repeated definition]
Model answer. Auxin is synthesised at the tip of the shoot, so when the tip is removed the supply of auxin from that point is cut off. [1 mark — site of auxin synthesis]
Since auxin from the shoot tip is what promotes elongation of the main shoot, its removal reduces upward elongation, and the side branches lower down are able to grow instead. The plant therefore spreads out and looks bushier rather than taller. [1 mark — reasoning linked to the observation]
Why it works. Example 19 is the kind of “formulate and analyse” question that carries twenty percent of the paper. You will not find it word for word in any textbook. What saves you is not memory but the habit of asking two questions: where is this hormone made and what does it do. Answer those two and almost any unseen situation becomes solvable. For more practice with this style of unseen question, work through this full CBSE Class 10 Science practice paper with answers.
10. Chemical Coordination: Animal Hormones and the Endocrine Glands
We ended section 7 with a problem: nerves cannot reach every cell, and a neuron needs a pause after each impulse. The body’s answer is chemical messaging. Certain glands release chemicals called hormones straight into the blood, and the blood carries them all over the body.
A hormone reaches every cell, but only the cells that have the matching receptor react to it. This is exactly the Wi-Fi idea from the start of the chapter: the signal is broadcast everywhere, and only devices with the right password connect.
Glands that pour their secretion directly into the blood, with no tube or duct, are called endocrine glands or ductless glands. Together they form the endocrine system.
The gland, hormone and effect table
This is the table to build in your own handwriting and revise. Read it as a story, not a list: each row is a gland, its message, and what happens when the message is missing or too loud.
| Gland | Hormone | Main function | If it goes wrong |
|---|---|---|---|
| Pituitary | Growth hormone | Regulates growth and development of the body | Deficiency in childhood causes dwarfism; excess causes gigantism |
| Thyroid | Thyroxine | Regulates carbohydrate, protein and fat metabolism in the body | Lack of iodine in the diet means thyroxine cannot be made properly, which can lead to goitre — a swelling of the neck |
| Adrenal | Adrenaline | Prepares the body to deal with a frightening or stressful situation | Released in bursts; this is the hormone behind a racing heart before an exam |
| Pancreas | Insulin | Regulates the level of sugar in the blood | If insulin is not secreted in proper amounts, blood sugar rises — the condition called diabetes, which may be treated with injections of insulin |
| Testes (in males) | Testosterone | Brings about the changes of puberty in boys, such as growth of facial hair and deepening of the voice | Secretion begins at puberty |
| Ovaries (in females) | Oestrogen | Brings about the changes of puberty in girls, such as development of breasts and the beginning of the menstrual cycle | Secretion begins at puberty |
Adrenaline, explained properly
Adrenaline deserves its own paragraph because it is the clearest example of a hormone doing several coordinated things at once, and because it is asked so often.
Adrenaline is secreted from the adrenal glands directly into the blood, and it is carried to different parts of the body. What it does there all points in one direction: get the body ready for sudden hard physical effort.
- It acts on the heart, so the heart beats faster and pumps more oxygenated blood to the muscles.
- Blood supply to the digestive system and the skin is reduced, because the small arteries around those organs narrow. This diversion sends more blood to the skeletal muscles — and it is also why a frightened person’s face turns pale.
- The breathing rate increases, because of contractions of the diaphragm and the rib muscles, bringing in more oxygen.
Put together, these changes give the muscles more oxygen and more fuel, quickly. That is why adrenaline is often called the fight-or-flight hormone. And notice something honest: every one of these effects is exactly what you feel before a viva or a race. The chapter is describing your own body.
Model answer. The gland involved is the thyroid gland and the hormone is thyroxine. [1 mark]
Iodine is essential for the thyroid gland to make thyroxine, and thyroxine regulates carbohydrate, protein and fat metabolism in the body so that the best balance of growth is provided. [1 mark]
If the diet is deficient in iodine, thyroxine cannot be synthesised in the required amount, and the person may suffer from goitre, in which the neck appears swollen. Using iodised salt supplies the small amount of iodine needed and helps prevent this. [1 mark]
Model answer. The hormone responsible is adrenaline, secreted by the adrenal glands directly into the blood. [1 mark]
It acts on the heart, so that the heart beats faster and supplies more oxygen-rich blood to the muscles. [1 mark]
The blood supply to the digestive system and to the skin is reduced because the small arteries there contract, which diverts blood towards the skeletal muscles. [1 mark]
The breathing rate also increases due to contractions of the diaphragm and the rib muscles, so more oxygen enters the body. All these changes together prepare the body to deal with the stressful situation. [1 mark]
Model answer. The doctor would investigate the pituitary gland and the growth hormone it secretes. [1 mark]
Growth hormone regulates the growth and development of the body. [1 mark]
If growth hormone is secreted in less than the required amount during childhood, the growth of the body is stunted and the person remains short, a condition known as dwarfism. An excess of the same hormone during childhood leads to gigantism, in which the person grows unusually tall. [1 mark — deficiency and excess both stated]
Why it works. Every one of these answers begins by naming the gland and the hormone in the very first line. Do that always. Even if the rest of your answer is imperfect, the naming mark is banked. It also forces you to commit to the right gland before you start explaining, which prevents the drifting, hedging answers that lose marks.
11. Feedback Control: How the Body Keeps Hormone Levels Steady
Here is a fair question. If hormones are so powerful, what stops a gland from pouring out too much? Too much growth hormone, too much insulin, too much adrenaline — any of these would be dangerous.
The answer is a feedback mechanism. The amount of a hormone released is itself controlled by the very thing that hormone affects. The system watches its own result and adjusts.
The clearest example in your syllabus is blood sugar and insulin:
- You eat a meal. The level of sugar in the blood rises.
- Cells of the pancreas detect this rise.
- The pancreas responds by producing and releasing more insulin.
- Insulin causes the blood sugar level to come down.
- As the blood sugar level falls, the pancreas detects the change and reduces its secretion of insulin.
Notice what happened: the output of the system switched off its own cause. That is precisely what a feedback mechanism means, and it is why hormone levels stay within a narrow, safe range instead of swinging wildly.
The everyday parallel is a room air conditioner with a thermostat. The room gets warm, the thermostat senses it, the compressor runs, the room cools, the thermostat senses that, and the compressor switches off. Nobody stands there adjusting it. The system regulates itself because the sensor and the switch are connected.
Model answer. The timing and the amount of hormone released are regulated by a feedback mechanism, in which the effect produced by the hormone controls its own further secretion. [1 mark — naming the feedback mechanism]
For example, when the level of sugar in the blood rises after a meal, it is detected by the cells of the pancreas, which respond by producing more insulin. [1 mark]
Insulin brings the blood sugar level down. As the sugar level falls, insulin secretion is reduced. In this way the blood sugar level is kept within a narrow range. [1 mark — the loop closing]
Model answer. Insulin is a hormone that must reach the blood in order to act on its target cells and lower the blood sugar level. [1 mark]
Insulin is a protein, and if it were swallowed it would be acted upon by the digestive juices in the stomach and small intestine and broken down before it could reach the blood. Injecting it delivers the hormone into the body without passing through the digestive tract, so it can act. [1 mark]
Cross-chapter link: the protein-digesting action of the digestive juices is covered in the Life Processes notes on nutrition. Questions that join two chapters like this are exactly the “integrated assessment” type mentioned in the CBSE question paper design.
Why it works. A feedback answer must show the loop closing. Many students describe the rise in sugar and the release of insulin, then stop. Half the idea, half the marks. Always finish with the sentence that says the secretion is then reduced.
12. Difference Between Nervous and Hormonal Control
This is the comparison question that appears most often in the whole chapter, in one form or another. Learn it as a table, and use the wire-versus-Wi-Fi picture to reconstruct any row you forget.
| Point of difference | Nervous control | Hormonal (chemical) control |
|---|---|---|
| Nature of the message | An electrical impulse along a neuron, converted to a chemical signal only at the synapse | A chemical substance, the hormone |
| Path taken | Along a fixed chain of nerve cells | Through the bloodstream |
| Speed | Extremely fast, effectively instant | Comparatively slow |
| How far it reaches | Only cells that are connected by nervous tissue | Every part reached by blood; only cells with the matching receptor respond |
| Duration of effect | Short lived; over almost as soon as it starts | Longer lasting |
| Repeat capacity | A neuron needs time to reset before carrying the next impulse | Secretion can continue steadily for long periods |
| Typically controls | Rapid responses such as reflexes and voluntary movement | Slow, long-term processes such as growth, metabolism, development and reproduction |
One more nuance that gets students extra credit in long answers: the two systems are not rivals. They work together. When you are frightened, your nervous system produces the instant jump, and adrenaline keeps your body alert for minutes afterwards. Fast reaction, then sustained readiness. Any well-run organisation uses both a phone call and a circular.
Model answer. In nervous control the message travels as an electrical impulse along neurons, whereas in hormonal control the message is a chemical carried by the blood. [1 mark]
Nervous control is very fast and its effect lasts only for a short time, whereas hormonal control is slower and its effect lasts much longer. [1 mark]
A nerve impulse can reach only those cells that are connected by nervous tissue, whereas a hormone is carried by blood to all parts of the body and acts on any cell that has the correct receptor. [1 mark]
Presentation tip: if the question says “differences”, write them in a two-column table if you have space. Tables are quick to mark and quick to write, and they make each difference unmistakable.
Model answer. Electrical impulses can travel only to those cells which are joined to one another by nervous tissue, and a very large number of cells in the body are not connected in this way. [1 mark]
Also, after a nerve cell has carried one impulse, it takes some time to reset itself before it can transmit another one, so a nerve cannot deliver a message continuously for a long period. [1 mark]
Therefore, for slow and long-lasting effects such as growth, metabolism and the changes of puberty, the body uses chemical messengers called hormones, which are carried by the blood to every part of the body. [1 mark]
Why it works. Example 26 is a “why” question, not a “list” question, so the answer is built as two limitations plus one solution. Whenever a question begins with “why did”, ask yourself what problem was being solved. That framing alone turns vague answers into precise ones.
13. Control and Coordination Class 10 Important Questions: Exam Strategy
You now have the content. This short section is about turning it into marks, and about being honest with you regarding what the current syllabus actually asks.
What the official syllabus lists for this chapter
For the 2026-27 session, the CBSE Class 10 Science (086) syllabus describes this chapter as: control and coordination in animals and plants — tropic movements in plants; introduction of plant hormones; control and coordination in animals: nervous system; voluntary, involuntary and reflex action; chemical coordination: animal hormones.
2. The syllabus also carries a general note that information presented in boxes in the NCERT textbook is not assessed in the year-end examination. Read those boxes for understanding, but do not spend revision time memorising them.
3. Always confirm the current syllabus for your own session from cbseacademic.nic.in before your board year, since CBSE reissues the curriculum document annually.
Where the marks actually sit
Across past papers and sample papers, questions from this chapter cluster into a small number of shapes. If you can do these six confidently, you have covered the realistic range.
- The reflex arc — definition, labelled diagram, and the reasoning about why the brain is bypassed.
- The neuron — structure with labels, and the route the impulse takes.
- Brain parts — direct naming questions, usually one mark each.
- Plant movements — tropic versus nastic, and the auxin explanation for phototropism.
- Hormone table questions — gland, hormone, function, and the deficiency or excess effect.
- Comparison and reasoning — nervous versus hormonal control, and the feedback mechanism.
Answer-writing habits that add marks without adding knowledge
- Count the marks, then count your sentences. Three marks means three separate, checkable statements.
- Name first, explain second. Bank the naming mark in line one.
- Use the exact term. Synapse, neuromuscular junction, cerebellum, thyroxine, abscisic acid. Approximate words earn approximate marks.
- Draw with a pencil and a ruler, label outside the figure. Diagrams in this chapter carry a large share of the marks.
- In case-based questions, stay inside the given situation. If the passage mentions a cyclist, answer about the cyclist.
- Never leave an assertion-reason question blank. Decide first whether each statement is true on its own, and only then ask whether R explains A.
Practice Worksheet: Control and Coordination Class 10 Questions with Answers
Ten original questions, arranged roughly from easy to hard. Attempt each one on paper first — genuinely write it, do not just think it — and only then open the answer. The gap between what you think you know and what you can write is where marks are lost.
Q1. Name the part of a neuron where information is picked up, and state in one line what happens there. (1 mark)
Show Answer
Q2. A boy steps barefoot on a sharp stone and pulls his foot back instantly. Write the complete reflex arc pathway for this action in the correct order. (2 marks)
Show Answer
Q3. Give one reason why a synapse is useful, even though it slows the message down slightly. (2 marks)
Show Answer
Q4. Match each function with the correct part of the brain: (i) precision of voluntary movement, (ii) size of the pupil, (iii) blood pressure, (iv) memory and reasoning. (2 marks)
Show Answer
(ii) Size of the pupil of the eye — mid-brain.
(iii) Blood pressure — medulla, in the hind-brain.
(iv) Memory and reasoning — fore-brain (cerebrum).
Q5. A young seedling is placed in a box with a small hole on the right side, and the box is closed. Predict what the shoot will do over the next few days and explain the role of auxin. (3 marks)
Show Answer
Q6. Two students are arguing. One says the folding of touch-me-not leaves is a reflex action. The other says it is not. Who is correct, and why? (3 marks)
Show Answer
Q7. Complete the table. (3 marks)
(a) Gland that secretes thyroxine — ?
(b) Hormone that regulates blood sugar — ?
(c) Hormone that prepares the body for a stressful situation — ?
(d) Effect of a deficiency of growth hormone in childhood — ?
(e) Plant hormone that inhibits growth — ?
(f) Plant hormone that promotes cell division — ?
Show Answer
Q8. Explain why a person who is very frightened often looks pale and breathes rapidly. (3 marks)
Show Answer
Q9. Assertion (A): Hormones are required by the body in very small amounts. Reason (R): Hormones are carried to their target organs by the blood.
Choose: (a) Both A and R are true and R is the correct explanation of A. (b) Both A and R are true but R is not the correct explanation of A. (c) A is true but R is false. (d) A is false but R is true. (1 mark)
Show Answer
A is true: hormones act in extremely small quantities. R is also true: hormones are secreted into the blood and carried to target organs. However, the reason a hormone is needed only in a small amount is that it is highly effective at low concentration, not that the blood carries it. The two statements are independently correct, so the answer is (b).
Q10. “The nervous system and the endocrine system do not compete; they cooperate.” Justify this statement with one clear example, and state two ways in which the two systems differ. (5 marks)
Show Answer
Two differences. (i) A nerve message travels as an electrical impulse along a fixed chain of neurons and is extremely fast but short lived, whereas a hormone travels as a chemical through the blood and is slower but longer lasting. (ii) A nerve impulse can reach only those cells that are joined by nervous tissue, whereas a hormone reaches every part supplied with blood and acts on any cell that has the matching receptor.
If you scored well on questions 1 to 4 but struggled on 5, 6 and 10, that is normal and it tells you something useful: your recall is fine and your reasoning needs practice. Re-read the “why it works” notes after each set of model answers above, then try questions 5, 6 and 10 again from a blank page two days later.
Kaizen: one small, honest improvement a day — one diagram redrawn from memory, one answer rewritten tighter — will take you further than one heroic night of cramming ever will. Keep going, patiently. The chapter is already smaller than it looked this morning.

