b7 plant organisation
4 detailed 50-minute lessons with teaching scripts, worked examples, parent guides, and assessment criteria.
4 detailed 50-minute lessons with teaching scripts, worked examples, parent guides, and assessment criteria.

Write down everything you already know about b7 plant organisation. Then check against the key terms: Plants are organised. Use a mini-whiteboard or paper.
Start with the revision notes summary, then attempt: Name the plant tissue responsible for photosynthesis and describe two adaptations of its cells. (3 marks)
Your student states one thing they learned and one question they still have about b7 plant organisation.
Quick recap: write 3 key points from Lesson 1 on b7 plant organisation. Check them against the notes below.
| Term | Meaning | Example |
|---|---|---|
| Epidermal tissue | Covers and protects surfaces of leaves, stems and roots | Thin, flat cells forming a continuous layer; covered by waxy cuticle on leaves to reduce water loss |
| Palisade mesophyll | Photosynthesis (main site) | Tall, column-shaped cells; packed with chloroplasts; positioned near upper surface of leaf for maximum light |
| Spongy mesophyll | Gas exchange within the leaf | Rounded, loosely-packed cells; large air spaces between cells allow gases (CO₂, O₂, water vapour) to diffuse freely |
| Xylem | Transports water and dissolved minerals from roots to leaves | Dead cells forming continuous hollow tubes; walls strengthened with lignin (waterproof and provides support); no cytoplasm or end walls |
| Phloem | Transports dissolved sugars (translocation) from leaves to growing and storage tissues | Living cells; sieve tube elements with perforated sieve plates; companion cells provide energy for transport |
| Roots | Anchor the plant; absorb water and minerals from soil | Root hair cells (increased surface area for absorption); xylem and phloem (transport) |
| Stems | Support the plant; transport water and sugars between roots and leaves | Xylem (water transport up); phloem (sugar transport both ways); structural tissue for support |
| Leaves | Photosynthesis; gas exchange | Palisade mesophyll (photosynthesis); spongy mesophyll (gas exchange); epidermal tissue with stomata (gas exchange and transpiration) |
Q: Name the plant tissue responsible for photosynthesis and describe two adaptations of its cells. (3 marks)
Answer: Palisade mesophyll. Adaptation 1: Cells are tall and column-shaped, packed with chloroplasts to absorb maximum light for photosynthesis. Adaptation 2: Positioned near the upper surface of the leaf where light intensity is highest. (Also accept: closely packed to maximise the number of photosynthetic cells in the light path.)
Your student teaches the key points back to you without looking. Fill any gaps immediately.
Recall the key terms: Plants are organised. Define each in one sentence.
Q1: Name the plant tissue responsible for photosynthesis and describe two adaptations of its cells. (3 marks)
Answer: Palisade mesophyll. Adaptation 1: Cells are tall and column-shaped, packed with chloroplasts to absorb maximum light for photosynthesis. Adaptation 2: Positioned near the upper surface of the leaf where light intensity is highest. (Also accept: closely packed to maximise the number of photosynthetic cells in the light path.)
Q2: Describe the process of transpiration. (3 marks)
Answer: Water evaporates from the cell walls of the spongy mesophyll cells inside the leaf. The water vapour diffuses out through the stomata into the surrounding air, down a concentration gradient. This loss of water creates a pull that draws more water up through the xylem from the roots (the transpiration stream).
Q3: Explain how increasing wind speed affects the rate of transpiration. (3 marks)
Answer: Increasing wind speed blows away water vapour from the air just outside the leaf. This maintains a steep concentration gradient of water vapour between the inside of the leaf (high concentration) and the outside air (low concentration after water vapour is blown away). The steeper gradient means water vapour diffuses out of the stomata faster, increasing the transpiration rate.
Q4: Compare xylem and phloem in terms of what they transport, the direction of transport, and whether energy is required. (3 marks)
Answer: Xylem transports water and dissolved minerals; phloem transports dissolved sugars (sucrose). Xylem transports in one direction only (upwards from roots to leaves); phloem transports in both directions (up and down). Xylem transport does not require energy (it is passive, driven by transpiration); phloem transport requires energy from respiration (it is an active process).
Q5: Explain how root hair cells are adapted for absorbing water from the soil. (3 marks)
Answer: Root hair cells have a long, thin projection (the root hair) which greatly increases the surface area for absorption of water from the soil. The thin wall of the root hair creates a short diffusion path, allowing water to enter the cell quickly by osmosis. There are many root hair cells on each root, providing a large total surface area for water uptake.
Q6: A gardener notices that their plants wilt more on hot, windy days than on cool, still days. Explain this observation using your knowledge of transpiration. (4 marks)
Answer: On hot, windy days, the transpiration rate is very high. The high temperature gives water molecules more kinetic energy so they evaporate faster from the mesophyll cells. The wind blows away water vapour from outside the leaf, maintaining a steep concentration gradient so water vapour diffuses out of the stomata faster. The plant loses water faster than it can absorb it from the soil, so the cells lose turgor pressure and the plant wilts. On cool, still days, the transpiration rate is low, so the plant can replace water as fast as it is lost and remains turgid.
Review any questions answered incorrectly. Identify whether the error was knowledge, method, or reading the question.
Review what these command words require: state (one point), describe (say what happens), explain (say why), compare (both sides), evaluate (judgement).
Extended question: Extended Answer 6 marks: Explain the adaptations of xylem and phloem and how the transpiration stream works. <div class="
Xylem vessels are made of dead cells forming hollow tubes, strengthened with lignin which makes them waterproof and provides structural support. This allows water and dissolved minerals to flow freely upwards from roots to leaves without obstruction. Phloem is made of living cells — sieve tube elements with perforated sieve plates allow dissolved sugars to flow through, and companion cells provide energy (ATP) for active transport of sugars (translocation). The transpiration stream works because water evaporates from the spongy mesophyll cell surfaces inside the leaf. Water vapour diffuses out through the stomata down a concentration gradient. This loss of water creates a pull that draws more water up through the xylem from the roots, replacing the water lost. This continuous flow is the transpiration stream. Mark scheme: 1 mark for xylem adaptations (dead/hollow/lignin); 1 mark for xylem function; 1 mark for phloem adaptations (living/sieve plates/companion cells); 1 mark for phloem function; 1 mark for transpiration mechanism (evaporation + diffusion); 1 mark for transpiration stream pull