Biology 1 · 4.1.1.1, 4.1.1.2, 4.1.1.3, 4.1.1.4

Cells: structure, types and specialisation

5 marksFoundation and Higher4.1.1.2, 4.1.1.1

A student looks at a leaf cell from a moss plant and a bacterial cell under a microscope.
.1
Which structure controls which substances enter and leave the moss cell?
[1 mark]
.2
Give two ways the genetic material in the bacterial cell is different from the genetic material in the moss cell.
[2 marks]
.3
The moss cell is 0.1 mm long. The bacterial cell is 2 µm long. Calculate how many times longer the moss cell is than the bacterial cell.
[2 marks]

4 marksFoundation4.1.1.2, 4.1.1.1

Animal cells, plant cells and bacterial cells contain different structures.
.1
What is the function of mitochondria?
[1 mark]
.2
Name the structure in a plant cell that absorbs light for photosynthesis.
[1 mark]
.3
Which two structures are found in a bacterial cell? Tick two boxes.
[2 marks]

Tick 2 boxes.

5 marksFoundationRequired practical 014.1.1.2, 4.1.1.5

A student prepares a slide of onion skin cells to look at under a light microscope. She peels a thin layer of skin from inside an onion, lays it flat on a microscope slide in a drop of iodine solution, and lowers a cover slip on top.
.1
Suggest why the student used a thin layer of onion skin.
[1 mark]
.2
Give the reason for adding iodine solution.
[1 mark]
.3
Which objective lens should the student use first to find the cells?
[1 mark]
.4
The student drew one cell. Her drawing of the cell is 45 mm long. The magnification of the microscope is ×150. Calculate the real length of the cell in micrometres (µm). Use the equation: real size =image sizemagnification= \dfrac{\text{image size}}{\text{magnification}}
[2 marks]
Unit: µm

5 marksFoundation and Higher4.1.1.3, 4.1.1.4

Cells become specialised to carry out particular jobs.
.1
A muscle cell contains many mitochondria. Explain why.
[2 marks]
.2
Which statement describes cell differentiation?
[1 mark]
.3
Compare cell differentiation in animals with cell differentiation in plants.
[2 marks]

4 marksFoundation4.1.1.1

A biologist examines a cell with a cell wall, cytoplasm, ribosomes and a loop of DNA, but no nucleus.
.1
Explain why this is a prokaryotic cell.
[2 marks]
.2
Explain the functions of its ribosomes and cell membrane.
[2 marks]

4 marksFoundation and Higher4.1.1.3, 4.1.1.2

A root hair cell and a palisade cell come from the same bean plant.
.1
Explain why the root hair cell has a long extension but usually lacks chloroplasts.
[2 marks]
.2
Explain why the palisade cell has many chloroplasts and a large permanent vacuole.
[2 marks]

5 marksFoundation and Higher4.1.1.3

A normal sperm cell has 80 mitochondria. An abnormal sperm cell has only 20 mitochondria but an undamaged tail.
.1
Calculate the percentage reduction in mitochondria.
[2 marks]
Unit: %
.2
Explain why the abnormal sperm may be less likely to reach an egg.
[3 marks]

4 marksFoundation and Higher4.1.1.2

A student draws a plant cell with a wall but no cell membrane. The student labels a chloroplast as the site of aerobic respiration.
.1
Explain why both a wall and a membrane should be shown.
[2 marks]
.2
Explain how to correct the respiration label and why the cell still needs respiration.
[2 marks]

Independent practice for AQA GCSE Combined Science: Trilogy (8464), not endorsed by AQA.

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