Ordinary Level Revision Notes

Leaving Cert Ordinary Level Biology

Chapter 13: Plant Anatomy, Transport and Responses

Transport + Plant Coordination

Subject
Biology
Module
Plant Anatomy, Transport and Responses
Resource
Website HTML revision notes
File
leaving-cert-ordinary-level-biology-chapter-13-plant-anatomy-transport-and-responses-revision-notes.html

Subtopics Covered

  • Learning Outcomes
  • Big Picture: Plants Must Transport and Respond
  • Plant Tissue Systems
  • Xylem vs Phloem
  • Roots, Stems and Leaves: Tissue Locations
  • Monocotyledons vs Dicotyledons

What This Pack Includes

  • Structured chapter notes formatted for ExamsLogic website reading
  • Exam-focused diagrams, definitions, and worked examples
  • Interactive practice sections carried over from the source notes
  • Independent study guidance based on the official curriculum
  • Print-friendly layout for future PDF export when needed
Disclaimer
This publication is an independent educational resource developed by ExamsLogic and compiled by experienced educators. It is based on publicly available official curricula, including Cambridge, Pearson Edexcel, IB, and the Irish Leaving Certificate. This product is not endorsed by, affiliated with, or sponsored by any examination board or governing authority. All registered trademarks remain the property of their respective owners.

1. Learning Outcomes

  • Identify dermal, vascular and ground tissues in plants.
  • Compare xylem and phloem in structure and function.
  • Describe plant structures in roots, stems and leaves.
  • Compare monocotyledons and dicotyledons.
  • Explain water absorption by root hair cells.
  • Describe water movement through xylem vessels.
  • Explain transpiration and transpiration pull using the Dixon-Joly Cohesion-Tension model at OL-friendly depth.
  • Describe how stomata open and close.
  • Explain auxins/IAA as plant growth regulators.
  • Describe phototropism, geotropism and thigmotropism.
OL Focus: Learn the diagrams and the direction of transport. Plant transport questions often reward clear labels and simple cause-and-effect explanations.

2. Big Picture: Plants Must Transport and Respond

Support

Plant tissues give strength and protection so plants can stand upright and survive damage.

Transport

Xylem carries water and minerals, while phloem carries food made by photosynthesis.

Response

Plants respond to light, gravity and touch using growth regulators such as auxins.

Biology link: Leaves make food, roots absorb water, stems connect them, and hormones help the plant grow in useful directions.

3. Plant Tissue Systems

Tissue systemMain roleExamples / location
Dermal tissueProtection and control of exchange with the environment.Epidermis, cuticle, root hairs, stomata.
Vascular tissueTransport of materials.Xylem and phloem in roots, stems and leaves.
Ground tissuePhotosynthesis, storage and support.Mesophyll in leaves, cortex and pith in stems/roots.
Exam Tip: Dermal = covering/protection. Vascular = transport. Ground = filling tissue, storage, photosynthesis and support.

4. Xylem vs Phloem

FeatureXylemPhloem
Main substance transportedWater and dissolved mineral ions.Sugars/food made by photosynthesis.
DirectionMainly upward from roots to leaves.Both directions depending on plant needs.
CellsDead hollow vessels at maturity.Living tissue, including sieve tubes and companion cells.
Extra roleProvides support due to lignin.Translocation of food.
WallThick, strengthened with lignin.Less thick; sieve plates allow flow.
Xylem and Phloem Transport Xylem Water + minerals
mainly upward Phloem Sugars/food
up or down
Examiner Trap: Xylem is not for glucose transport. Glucose/sucrose transport is phloem.

5. Roots, Stems and Leaves: Tissue Locations

Plant organImportant tissuesFunction
RootEpidermis with root hairs, cortex, xylem, phloem.Absorbs water/minerals and transports them upward.
StemVascular bundles containing xylem and phloem, ground tissue.Supports plant and transports materials.
LeafEpidermis, mesophyll, veins, stomata.Photosynthesis, gas exchange and transpiration.
Leaf Cross Section Upper epidermis + cuticle Palisade mesophyll: photosynthesis Spongy mesophyll: air spaces + gas exchange Lower epidermis with stomata Vein contains xylem and phloem.

6. Monocotyledons vs Dicotyledons

FeatureMonocotyledonDicotyledon
Seed leaves/cotyledonsOne cotyledon.Two cotyledons.
Leaf veinsUsually parallel veins.Usually net-like veins.
Flower partsOften in multiples of 3.Often in multiples of 4 or 5.
Root systemOften fibrous roots.Often tap root system.
Vascular bundles in stemScattered.Often arranged in a ring.
Monocot vs Dicot Leaf Veins Monocot Parallel veins Dicot Net-like veins
Exam Tip: For quick identification, leaf veins are very useful: monocot = parallel, dicot = net-like.

7. Root Hair Absorption

Root hair cells are adapted for absorbing water and mineral ions from the soil.

AdaptationHow it helps
Long root hair projectionIncreases surface area for absorption.
Thin cell wallShort diffusion distance.
Large vacuoleHelps maintain water uptake by osmosis.
Many mitochondriaSupply energy for active transport of mineral ions.
Root Hair Cell Absorption Nucleus Water in soil Large surface area helps water and mineral ion uptake.
Examiner Secret: Water enters root hair cells by osmosis. Mineral ions often enter by active transport.

8. Water Movement Through the Plant

Water moves from the soil into root hair cells, across the root, into xylem vessels, and upward to the leaves.

Soil water Root hair cell Root cortex Xylem Leaf cells Stomata
StageExplanation
AbsorptionWater enters root hair cells by osmosis.
Movement across rootWater moves from cell to cell and into xylem.
Transport in xylemWater moves upward through hollow xylem vessels.
Loss from leafWater evaporates from leaf cells and diffuses out through stomata.
Examiner Trap: Transpiration is water loss from aerial parts of plants, mainly leaves, not water absorption by roots.

9. Transpiration and Transpiration Pull

Transpiration is the loss of water vapour from a plant, mainly through stomata in leaves.

Transpiration pull helps draw water upward through the xylem from roots to leaves.

Transpiration Pull Leaf Water loss from leaves pulls the water column upward in xylem. Water vapour out Water up xylem
Dixon-Joly Cohesion-Tension ideaOL-friendly explanation
CohesionWater molecules stick to each other.
TensionWater loss from leaves creates a pulling force.
Continuous columnBecause water molecules stick together, the pull moves water upward through xylem.
Exam Tip: For transpiration pull, mention evaporation from leaves, water vapour leaving stomata, and water being pulled up xylem.

10. Factors Affecting Transpiration

FactorEffect on transpirationReason
High temperatureIncreases transpiration.Faster evaporation.
WindIncreases transpiration.Removes humid air near leaf surface.
Low humidityIncreases transpiration.Steeper water vapour gradient.
High light intensityOften increases transpiration.Stomata open for photosynthesis.
Common Mistake: Saying humid air increases transpiration. High humidity usually decreases transpiration because the air already contains much water vapour.

11. Stomata and Guard Cells

Stomata are pores usually found mainly on the lower surface of leaves. Each stoma is controlled by two guard cells.

ConditionGuard cellsStomaImportance
Guard cells turgidFilled with water and swollen.Open.Allows gas exchange for photosynthesis.
Guard cells flaccidLose water and become less swollen.Closed.Reduces water loss.
Stomatal Opening and Closing Open stoma Guard cells turgid Closed stoma Guard cells flaccid
Examiner Secret: Stomata balance two needs: allowing gas exchange and reducing water loss.

12. Plant Growth Regulators: Auxins / IAA

Auxins, including IAA, are plant growth regulators. They affect cell elongation and help control plant growth responses.

Auxin factMeaning
Produced in shoot tipsHelps control shoot growth.
Moves away from lightAuxin builds up on the shaded side of shoots.
Stimulates shoot cell elongationThe shaded side grows more, so the shoot bends toward light.
Affects roots differentlyHigh auxin can inhibit root elongation.
Examiner Trap: In shoots, auxin usually causes more elongation. In roots, high auxin can reduce elongation. Do not treat roots and shoots as identical.

13. Phototropism

Phototropism is a plant growth response to light.

Shoots show positive phototropism: they grow toward light.
Phototropism in a Shoot Light Shoot bends toward light More auxin on shaded side
StepExplanation
Light from one sideAuxin moves to the shaded side of the shoot.
More auxin on shaded sideCells on shaded side elongate more.
Unequal growthThe shoot bends toward the light.
Exam Tip: Phototropism answers need three ideas: light direction, auxin distribution, unequal growth.

14. Geotropism / Gravitropism

Geotropism, also called gravitropism, is a plant growth response to gravity.

Plant partResponseWhy useful?
RootPositive geotropism: grows toward gravity/downward.Anchorage and water/mineral absorption.
ShootNegative geotropism: grows away from gravity/upward.Reaches light for photosynthesis.
Geotropism Gravity Shoot grows upward Root grows downward
Examiner Secret: “Positive” means growth toward the stimulus. “Negative” means growth away from the stimulus.

15. Thigmotropism

Thigmotropism is a plant growth response to touch.

ExampleExplanation
Climbing plant tendrilsTendrils coil around a support after touching it.
AdvantageHelps the plant climb and reach more light.
Thigmotropism: Response to Touch Tendril coils around support Support
Exam Tip: Tropisms are growth responses, not quick muscle-like movements.

16. Tropism Summary Table

TropismStimulusPositive exampleNegative example
PhototropismLightShoots grow toward light.Some roots may grow away from light.
Geotropism / gravitropismGravityRoots grow downward.Shoots grow upward away from gravity.
ThigmotropismTouchTendrils grow/coiling toward support.Less commonly examined at OL.

17. Interactive Simulator: Transport Tissue Detective

Identify the Tissue

Clue: Transports water and minerals mainly upward.


Feedback

Ready

18. Interactive Simulator: Tropism Detective

Identify the Tropism

Clue: A shoot bends toward light.


Feedback

Ready

19. High-Value Exam Guidance

Exam Tip 1: Xylem carries water and minerals; phloem carries food/sugars.
Exam Tip 2: Root hairs are adapted by large surface area and thin walls.
Exam Tip 3: Transpiration pull depends on water loss from leaves.
Exam Tip 4: For phototropism, mention auxin and unequal growth.
Examiner Trap 1: Do not say stomata are always open. They open and close depending on conditions.
Examiner Trap 2: Do not mix up positive and negative tropism. Positive means toward stimulus.
Examiner Trap 3: Monocot and dicot comparisons must use matched features.
Common Mistake 1: Saying transpiration is water moving into roots. It is water loss from leaves.
Common Mistake 2: Saying phloem only moves upward. Phloem can move substances in both directions.
Examiner Secret 1: In stomata questions, use the words turgid and flaccid.
Examiner Secret 2: Auxin collects on the shaded side of shoots, causing that side to grow faster.
Examiner Secret 3: Dixon-Joly at OL can be explained as cohesion between water molecules plus tension from transpiration pull.

20. MCQs with Instant Answers

1. Xylem transports:
Answer: B. Xylem transports water and dissolved mineral ions.
2. Phloem transports:
Answer: A. Phloem transports food such as sugars made in photosynthesis.
3. Water enters root hair cells mainly by:
Answer: A. Water enters root hair cells by osmosis.
4. Transpiration is:
Answer: A. Transpiration is the loss of water vapour, mainly through stomata.
5. Guard cells control:
Answer: A. Guard cells control whether stomata open or close.
6. Shoots growing toward light show:
Answer: A. Growth toward light is positive phototropism.
7. Roots usually show:
Answer: A. Roots grow downward toward gravity, so they show positive geotropism.
8. Tendrils coiling around a support show:
Answer: A. Thigmotropism is growth response to touch.
9. Monocot leaves usually have:
Answer: A. Monocot leaves usually have parallel veins.
10. Auxin in shoots usually causes:
Answer: A. Auxin promotes cell elongation in shoots.

21. Structured Exam Questions

  1. Name the three plant tissue systems and state one function of each. [6]
  2. Compare xylem and phloem under four headings. [8]
  3. Draw and label a simple leaf cross section. [6]
  4. Compare monocotyledons and dicotyledons using four features. [8]
  5. Describe how a root hair cell is adapted for absorption. [6]
  6. Outline the pathway of water from soil to leaf air spaces. [6]
  7. Explain transpiration pull using the Dixon-Joly Cohesion-Tension idea. [6]
  8. Describe how stomata open and close. [5]
  9. Explain how auxin causes a shoot to bend toward light. [6]
  10. Compare phototropism, geotropism and thigmotropism. [6]

22. Detailed Mark Scheme

Q1. Dermal tissue: protection/exchange [2]. Vascular tissue: transport/xylem and phloem [2]. Ground tissue: photosynthesis/storage/support [2].

Q2. Xylem transports water/minerals [1], mainly upward [1], dead hollow vessels [1], lignin/support [1]. Phloem transports sugars/food [1], can move both directions [1], living tissue [1], translocation [1].

Q3. Correct leaf outline/layers [1]. Labels: upper epidermis/cuticle [1], palisade mesophyll [1], spongy mesophyll [1], vascular bundle/vein [1], lower epidermis/stoma/guard cells [1].

Q4. Monocot: one cotyledon [1], parallel veins [1], flower parts in 3s [1], scattered vascular bundles/fibrous roots [1]. Dicot: two cotyledons [1], net veins [1], flower parts in 4s/5s [1], vascular bundles in ring/tap root [1].

Q5. Root hair gives large surface area [1]. Thin wall/short diffusion distance [1]. Large vacuole [1]. Water enters by osmosis [1]. Mineral ions by active transport [1]. Mitochondria provide energy [1].

Q6. Soil water [1] enters root hair by osmosis [1], moves across cortex [1], enters xylem [1], moves up stem [1], reaches leaf mesophyll/air spaces [1].

Q7. Water evaporates from leaf cells [1]. Water vapour diffuses out through stomata [1]. This creates tension/pull [1]. Water molecules cohere/stick together [1]. Continuous water column in xylem [1]. Water is pulled upward from roots [1].

Q8. Guard cells control stomata [1]. When turgid they curve/open stoma [2]. When flaccid they close stoma [1]. This balances gas exchange and water loss [1].

Q9. Light from one side [1]. Auxin moves/builds on shaded side [1]. Auxin stimulates shoot cell elongation [1]. Shaded side grows faster [1]. Unequal growth causes bending [1]. Shoot bends toward light/positive phototropism [1].

Q10. Phototropism is response to light [2]. Geotropism is response to gravity [2]. Thigmotropism is response to touch [2]. Accept examples such as shoots to light, roots downward, tendrils coiling.

23. Mastery Checklist

  • I can name dermal, vascular and ground tissues.
  • I can compare xylem and phloem accurately.
  • I can identify tissues in roots, stems and leaves.
  • I can compare monocotyledons and dicotyledons.
  • I can describe root hair cell adaptations.
  • I can explain water absorption by osmosis.
  • I can trace the pathway of water through xylem.
  • I can define transpiration.
  • I can explain transpiration pull using cohesion and tension.
  • I can describe stomatal opening and closing.
  • I can explain auxin/IAA action in shoots.
  • I can distinguish phototropism, geotropism and thigmotropism.
  • I can answer plant transport and response questions using clear diagrams.