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Chapter 3: Tissues in Action — Detailed Notes | Class 9 Science
Class 9 · Science · NCERT Exploration

Chapter 3: Tissues in Action

Complete Study Notes Plant & Animal Tissues Exam-Ready Format

1. Introduction — The Idea of a Tissue

A tissue is a group of cells that are similar in structure and work together to perform a specific function. The formation of tissues creates division of labour in the body, which increases efficiency and allows complex life processes to occur.

Hierarchy of Organisation Cell → Tissue → Organ → Organ System → Organism

In unicellular organisms (e.g., Amoeba), a single cell performs all life functions. In multicellular organisms (plants and animals), different groups of specialised cells carry out different functions — this is why tissues exist.

Exam Tip A very common 1-mark/2-mark question: “Define tissue and give one example each from a plant and an animal.” Answer: Tissue = group of similar cells performing a specific function. Plant example: xylem (conducts water). Animal example: muscle tissue (movement).

Why Are Plant and Animal Tissues Different?

Table 1.1 — Key structural/functional differences
BasisPlantsAnimals
MovementFixed in one place; need support to stay uprightGenerally capable of movement (except a few like sponges)
Cell wallPresent — gives rigidity and strengthAbsent — allows change of shape, aiding locomotion
Mode of nutritionAutotrophic — tissues help utilise solar energy via photosynthesisHeterotrophic — tissues help digest food from external sources
Growth patternLocalised growth (only at meristems) — growth continues throughout lifeGeneralised growth — occurs throughout the body, but growth stops after a point

2. Tissues for Growth in Plants

Plants grow in three distinct ways:

  • Increase in length — height of stem and depth of roots
  • Increase in girth — thickness of the stem
  • Regrowth — after cutting of branches or grazing by animals

All three types of growth depend on actively dividing cells, collectively called meristematic tissue. There are three types, based on location and function.

2.1 Apical Meristem — Growth in Length

Key Experiment: Activity 3.1 (Onion Root Growth)

Two onion bulbs are placed in water-filled jars (Jar A and Jar B). Root growth is measured daily. On Day 3, the root tips of Jar B are cut by about 1 cm.

Observation: Roots in Jar A continue growing in length steadily. Roots in Jar B stop growing after their tips are removed.

Conclusion: Roots grow only from their tips, which contain cells that divide continuously (confirmed earlier by observing mitosis in onion root tips).

This growth zone at the tips of roots and shoots is called the apical meristem. It is responsible for increase in length of the plant.

Exam Tip — Diagram-Based Question Be ready to label a sapling diagram showing shoot apical meristem (tip of shoot) and root apical meristem (tip of root). This is a frequently asked 2-mark diagram question.

2.2 Lateral Meristem — Growth in Girth

Located along the circumference of the stem (in a ring), this meristem produces new cells inside and outside in a concentric manner, increasing the stem’s diameter. This is called the lateral meristem (also linked to formation of annual growth rings seen in a cut tree trunk).

Application: Age of a Tree Counting annual rings lets scientists estimate a tree’s age and the climatic conditions (favourable/unfavourable years) it experienced — wide rings = good growth year; narrow rings = poor growth year.

2.3 Intercalary Meristem — Regrowth After Cutting

Located at the base of the internode, or just above a node (the point where branches/leaves arise). When the tip of a stem is cut, growth in length stops, but new branches sprout from the nodes — this is why hedges become bushier after trimming and grass regrows after mowing/grazing.

Quick Recall — 3 Meristems: Apical (tip → length) · Lateral (ring → girth) · Intercalary (node/base → regrowth after cutting)

Characteristics of Meristematic Cells

  • Small in size, with thin cell walls
  • Large, prominent nucleus and dense cytoplasm rich in organelles
  • Vacuoles generally absent
  • Tightly packed with little/no intercellular space

These features allow rapid and continuous cell division.

Differentiation Cells that lose the ability to divide undergo structural/functional change to become specialised — this process is called differentiation. Meristematic tissue becomes permanent tissue through differentiation.

3. Permanent Tissues in Plants

Permanent tissues are classified as:

  • Simple — composed of only one type of cell (parenchyma, collenchyma, sclerenchyma)
  • Complex — composed of more than one type of cell working together (xylem, phloem)

3.1 Protective Tissue — Epidermis

The epidermis is the outermost layer of the plant body — a single, tightly packed layer of flat, rectangular cells. It is covered by a waxy layer called the cuticle, which reduces water loss. In roots, epidermal projections form root hairs that increase surface area for water/mineral absorption. In leaves, the epidermis contains pores called stomata, which allow gaseous exchange and transpiration (evaporation of water vapour), creating a transpiration pull that helps move water up through the xylem.

HOTS Question Why is a thick cuticle advantageous for a desert plant but disadvantageous for an underwater plant? — A thick cuticle minimises water loss by transpiration (vital in dry conditions), but an aquatic plant needs gas exchange directly through its surface, so a thick waterproof cuticle would hinder that exchange.

3.2 Supporting Tissues (Simple Permanent Tissues)

Table 3.1 — Parenchyma, Collenchyma, Sclerenchyma compared
FeatureParenchymaCollenchymaSclerenchyma
Cell natureLiving, thin-walledLiving, unevenly thickened corners (pectin)Mostly dead, thick walls (lignin)
PackingLoosely packed, intercellular spaces presentFairly compactCompact, no intercellular space
FunctionFood storage; photosynthesis in green parts; aquatic forms have air spaces for floatingProvides flexibility — allows stems/tendrils to bend without breakingProvides strength & rigidity (woody structure)
Location exampleCortex, pithPetioles, young stemsStems, leaf veins, seed/nut coverings (coconut husk, walnut shell)
Exam Tip Classic assertion-reason style question: fresh green twigs bend (collenchyma provides flexibility) but dry/woody twigs snap (sclerenchyma is rigid due to lignin, cannot bend).

3.3 Conducting Tissues (Complex Permanent Tissues)

Xylem
  • Transports water and minerals from roots upward
  • Also gives mechanical strength
  • Components: tracheids, vessels, xylem parenchyma, xylem fibres
  • Only xylem parenchyma is living; tracheids, vessels, fibres are sclerenchymatous (dead, thick-walled)
Phloem
  • Transports food (organic nutrients) from leaves to rest of plant
  • Mostly made of living cells
  • Components: sieve tubes, companion cells, phloem parenchyma, phloem fibres
  • Companion cells regulate loading/unloading of sugars in sieve tubes
Frequently Confused Xylem = water/minerals, mostly dead cells (except xylem parenchyma). Phloem = food, mostly living cells. If a question says “food transport tissue malfunctioning” → answer is Phloem, not Xylem.

3.4 Plant Tissue Systems

All plant tissues are organised into three larger tissue systems:

  1. Dermal tissue system — outer covering; protects and reduces water loss (epidermis)
  2. Ground tissue system — main body between dermal and vascular tissue; includes parenchyma, collenchyma, sclerenchyma
  3. Vascular tissue system — conducting tissues: xylem and phloem

4. Animal Tissues

Animal tissues are broadly of four types: Epithelial, Connective, Muscular, and Nervous.

4.1 Epithelial Tissue

Forms the outer covering of the body (skin) and lines internal organs (mouth, lungs, blood vessels, intestine). Cells are closely packed with minimal intercellular space, preventing entry of germs and reducing water loss.

Table 4.1 — Types of Epithelial Tissue (structure–function relationship)
FunctionStructureLocation
Exchange (diffusion of gases/liquids)Single layer of thin, flat cells (squamous)Lining of blood vessels, lungs
ProtectionMany layers; outer cells flat and tightly packed (stratified)Skin, mouth, oesophagus
SecretionCuboidal/columnar cells specialised for producing & releasing substancesSalivary glands, sweat glands, stomach lining
Sensory functionSpecialised receptor cells with hair-like ciliaNostrils, taste buds, inner ear
AbsorptionSingle layer of tall, pillar-like (columnar) cells, often with hair-like structuresLining of small intestine
Exam Tip Why is epithelium lining the lungs/blood vessels only one cell thick? — To allow rapid/efficient diffusion of gases and liquids across the tissue; a thicker layer would slow down exchange.

4.2 Connective Tissue

Connects and supports other tissues/organs. Composition varies in the matrix (the substance between cells) — from fluid (blood) to hard (bone).

Table 4.2 — Types of Connective Tissue
TissueMatrix / StructureFunction
BloodFluid matrix (plasma ~55%); contains RBCs, WBCs, plateletsTransports nutrients, gases, hormones, wastes
BoneHard, rigid matrix (calcium and phosphorus compounds)Gives strength, support, and protection; forms the skeleton
CartilageSoft, jelly-like matrixProvides flexibility; cushions bone ends (e.g., nose, ear)
TendonTough fibrous connective tissueConnects muscle to bone; transmits force for movement
LigamentFibrous connective tissueConnects bone to bone; provides stability, limits movement, prevents dislocation
Quick Recall:Tendon = To bone (from muscle)” and “Ligament = bone to bone, Limits movement.” Do not mix them up — a very common 1-mark error.

Components of Blood

  • Plasma — fluid part (~55% of volume); carries dissolved substances
  • RBCs (Red Blood Cells) — contain haemoglobin (iron-rich protein, gives red colour); lifespan ~4 months
  • WBCs (White Blood Cells) — fight infection; collect at infected sites causing pus/inflammation
  • Platelets — help in blood clotting at injury sites

4.3 Muscular Tissue

Table 4.3 — Three Types of Muscle
TypeCell shapeNucleiStriationsControlLocation
Skeletal (striated)Long, cylindrical, unbranchedMultinucleatePresent (striated)VoluntaryAttached to skeleton (limbs, etc.)
Smooth (unstriated)Spindle-shapedSingle nucleusAbsentInvoluntaryStomach, intestines (slow, continuous movement)
CardiacCylindrical, branchedSingle nucleusFaint striationsInvoluntaryOnly in the heart
Exam Tip — Assertion/Reason style Assertion: Cardiac muscle can contract continuously without fatigue. Reason: Cardiac muscle cells have abundant mitochondria and a rich blood supply, sustaining continuous energy production. (Both true and R correctly explains A.)

4.4 Nervous Tissue

Forms the body’s control and coordination network. Made up of neurons (nerve cells), specialised to receive, process, and transmit messages.

Structure of a Neuron (label carefully for diagram questions)

  • Cell body — contains nucleus; controls cell activities
  • Dendrites — receive signals from other neurons
  • Axon — long fibre carrying messages away from the cell body, ending in axon terminals that transmit signals to other cells

5. The Musculoskeletal System

Made up of bones, muscles, joints, cartilage, tendons, and ligaments. It helps the body stand upright, move, maintain posture, and protect delicate organs — functioning under control of the nervous system. Muscles pull on bones via tendons; muscle contraction → tendon transmits force → movement at a joint.

Quick Fact On average, the adult human skeleton makes up about 12–15% of body weight (varies with age, gender, body composition).

5.1 Types of Joints

Table 5.1 — Joint types, movement, and location
Joint TypeMovement AllowedExample Location
Ball and socketFree movement — forward, backward, sideways, circularShoulder (rounded arm bone fits shoulder bone hollow)
HingeMovement in one direction only (like a door hinge)Elbow, knee
PivotSide-to-side rotation (like a doorknob)Joint between skull and backbone (neck)
FixedNo movementSkull bones (protect brain)
Common Mistake to Avoid Assertion: In a hinge joint, movement occurs primarily in one plane. Reason: The bone ends are shaped to allow sliding in all directions. — This Reason is FALSE; hinge joints restrict movement to one plane precisely because the bone ends do NOT allow sliding in all directions (that describes a ball-and-socket joint).

5.2 Skeletal System — Backbone & Rib Cage

  • Vertebral column (backbone) — series of small bones called vertebrae; supports the body, allows upright posture. Cartilage discs between vertebrae cushion and allow flexibility while protecting the spinal cord.
  • Rib cage — 12 pairs of ribs; attached to the spine (back) and sternum/breast bone (front) via flexible cartilage. This flexibility allows the rib cage to expand/contract during breathing.

6. Important Named Concepts & Scientists

Totipotency (F. C. Steward, 1958)

Demonstrated that single cells from carrot phloem could regenerate an entire plant. Phloem cells first dedifferentiate (regain ability to divide) forming an unspecialised cell mass, which then divides and redifferentiates into roots, shoot, and a complete plant. This ability of a mature cell to give rise to a whole organism is called totipotency, and such cells are totipotent cells — similar to how a zygote develops into a full organism.

Crown Gall Disease

Caused by the bacterium Agrobacterium tumefaciens; produces tumour-like swellings on stems due to uncontrolled cell division. Scientists studied how this bacterium transfers genetic material into plant cells — this knowledge is now used as a tool in plant tissue culture and genetic engineering to introduce useful genes into crops.

B. G. L. Swamy

Renowned Indian botanist known for contributions to plant morphology and anatomy; authored Hasuru Honnu (Kannada), which won the Kendra Sahitya Akademi Award (1978).

Sipra Guha Mukherjee & S. C. Maheshwari

Achieved a breakthrough in plant tissue culture — developed a complete plant through anther culture using an artificial nutrient medium under controlled conditions, contributing significantly to crop improvement.


7. Exam Question Bank

A. Multiple Choice / Assertion-Reason (1 mark each)

  1. Meristematic tissues can divide repeatedly because their cells have thin walls, dense cytoplasm, and a large prominent nucleus (NOT because they have thick walls or large vacuoles).[1]
  2. If a plant cannot transport food from leaves to roots, the malfunctioning tissue is Phloem.[1]
  3. Epithelial tissue lining internal organs is usually one/few cells thick to allow quick exchange of materials by diffusion.[1]
  4. Bending knees and ankles involves a Hinge joint.[1]

B. Short Answer (2–3 marks)

  1. Distinguish between xylem and phloem on the basis of function and cell nature (living/dead).[3]
  2. Why does a fresh green twig bend without breaking, while a dry twig snaps? Name the tissues responsible.[2]
  3. Differentiate between a tendon and a ligament with one example/function of each.[2]
  4. Explain why cardiac muscle can work continuously throughout life without fatigue.[2]
  5. What is meant by differentiation in the context of meristematic tissue?[2]

C. Long Answer / HOTS (4–5 marks)

  1. An elephant severely debarks a tree to feed on its bark. (a) Which function(s) of the tree are hampered? (b) Which tissue would be further affected if damage continues beneath the bark? (c) What function would be hampered if tissue beneath the bark is severely damaged? — Hint: bark removal damages phloem (just under the bark), disrupting food transport; further damage into the wood affects xylem (water transport) and the lateral meristem (girth growth).[5]
  2. Explain the totipotency experiment of F. C. Steward using carrot phloem cells. What does this reveal about the potential of mature plant cells?[5]
  3. With reference to Sohan’s sugarcane cutting experiment (Type A vs Type B), identify the likely difference between the cuttings (presence of a node/bud with meristematic tissue) and explain why only Type B could sprout.[4]
  4. Explain the three types of meristematic tissues with their location and function. How do they together account for a plant’s overall growth in length, girth, and branching?[5]
  5. Describe the structure and function of a neuron, and explain how nervous tissue coordinates both voluntary and involuntary muscle activity.[4]

D. Numerical / Graph-Based

  1. Using the teak tree data (age vs. diameter vs. annual rings), plot the graph and explain the relationship between diameter and number of annual rings formed. Identify the tissue responsible for girth and its location.[5]

At a Glance — Chapter Summary

  • Tissue = group of similar cells performing specific functions; enables division of labour.
  • Plant tissues: Meristematic (dividing: apical, lateral, intercalary) and Permanent (differentiated: simple & complex).
  • Simple permanent tissues: parenchyma (storage), collenchyma (flexibility), sclerenchyma (strength).
  • Complex permanent tissues: xylem (water/minerals, mostly dead) and phloem (food, mostly living).
  • Animal tissues: Epithelial (covering/lining), Connective (support/connect — blood, bone, cartilage, tendon, ligament), Muscular (movement — skeletal, smooth, cardiac), Nervous (control/coordination — neurons).
  • Musculoskeletal system = bones + muscles + joints + cartilage + tendons + ligaments, under nervous system control.
  • Joint types: ball & socket (free movement), hinge (one direction), pivot (rotation), fixed (no movement).
  • Totipotency: a mature plant cell’s ability to regenerate a whole organism (F. C. Steward, carrot phloem, 1958).
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