Lesson 2.1.2
2.1.2 Cell membrane structure and the fluid mosaic model Quiz: Pearson Edexcel Biology A (Salters-Nuffield), Unit 2
20 questions
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Lesson 2.1.2, Cell membrane structure and the fluid mosaic model: 20 multiple choice questions for the Pearson Edexcel Biology A (Salters-Nuffield) (9BI0), Unit 2: Genes and Health, written with Revision Ninja.
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The 20 questions
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Which molecules form the basic framework of the cell membrane according to the fluid mosaic model?
- A phospholipid bilayer with hydrophilic heads facing outwards and hydrophobic tails facing inwards
- A single layer of glycogen molecules that are cross-linked by peptide bonds
- A double layer of proteins with hydrophobic regions facing the cytoplasm and the outside
- A bilayer of cellulose fibres that are arranged parallel to the surface of the cell
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Why are the tails of phospholipids hydrophobic?
- They are long non-polar hydrocarbon chains that do not form hydrogen bonds with water
- They contain charged phosphate groups that repel water molecules strongly
- They contain glycosidic bonds that are broken by water, which prevents them dissolving
- They are made of amino acids that are insoluble in water at body temperature
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What is the role of cholesterol in animal cell membranes?
- It forms the main channels through which water passes by osmosis across the membrane
- It is an enzyme that catalyses the breakdown of phospholipids in the membrane
- It forms the cell wall that gives the membrane its rigidity in plants
- It helps to regulate membrane fluidity, making the membrane less fluid at high temperatures
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Which feature of the fluid mosaic model explains why proteins can move within the membrane?
- The membrane contains no water, so the proteins are solid and cannot move at all
- The phospholipids are free to move laterally, so the bilayer behaves as a fluid
- The phospholipids are covalently bonded to each other, so the membrane is rigid and immobile
- The proteins are fixed to the cytoskeleton, which stops any movement within the membrane
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What is the function of channel proteins in membrane transport?
- They break down large molecules into smaller units before they cross the membrane by diffusion
- They provide a water-filled pore through which specific ions or small polar molecules can diffuse
- They bind to large molecules and change shape to carry them across the membrane against a gradient
- They form the hydrophobic core of the membrane, which prevents any substance from crossing
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Which description best matches carrier proteins in membrane transport?
- They bind a specific molecule and change shape to move it across the membrane
- They are attached to the outside of the cell and digest molecules before they can enter
- They are made of cellulose and form a rigid wall that prevents molecules from passing
- They form open pores that let any molecule of any size pass through the membrane freely
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Which of these is a glycoprotein's role in the cell membrane?
- It acts as the main source of ATP for the cell during periods of anaerobic respiration
- It forms the hydrophobic tails of the bilayer, which keep the membrane impermeable
- It acts as a cell-surface marker for recognition by other cells and by the immune system
- It breaks down hydrogen peroxide inside the cell to protect the membrane from damage
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Why do the membrane lipids and proteins described by the fluid mosaic model form a mosaic?
- The membrane is made of identical protein units joined end to end in a regular repeating pattern
- The lipid bilayer is a single sheet of glycogen that is cut into separate pieces by proteins
- The phospholipids are arranged in rows that alternate with rows of carbohydrate chains
- Proteins are scattered within and across the lipid bilayer in a pattern that looks like a mosaic
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What evidence led to the modification of earlier models of the membrane to the fluid mosaic model?
- Experimental data showing that membrane proteins can move laterally and that the membrane is fluid
- Observations that the membrane is a rigid wall of cellulose in all animal cells
- Evidence that the membrane contains no lipids, so it must be made entirely of protein
- Measurements showing that membranes are made of glucose units joined by glycosidic bonds
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Why do scientists describe the fluid mosaic model as an interpretation of data rather than a fixed truth?
- It was proven by a single experiment, and so it can never be changed by any later discovery
- It is a rule from the law of diffusion, which is a fixed truth with no room for revision
- It is an explanation that fits current data, and it can be revised as new evidence emerges
- It is a theory that has no basis in experimental data, which is why it is open to revision
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A student investigates the effect of temperature on the permeability of beetroot cell membranes by measuring the colour of the solution. What does a darker solution indicate?
- The membrane has become more rigid, so pigment cannot leave the cell
- The temperature has no effect on the colour, so the membrane is unchanged
- More pigment has leaked out, so the membrane has become more permeable
- Less pigment has leaked out, so the membrane has become less permeable
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Why does a high concentration of ethanol increase the permeability of cell membranes?
- Ethanol increases the thickness of the bilayer, which reduces the movement of molecules across it
- Ethanol strengthens the bilayer by forming covalent bonds with the phospholipid tails
- Ethanol dissolves lipids and disrupts the phospholipid bilayer, making it leaky
- Ethanol converts all membrane proteins into carbohydrates, which then block the pores
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Which of these is a reason that membranes become more permeable at high temperatures?
- Water in the cell freezes, which forms ice crystals that create a more effective barrier to diffusion
- The phospholipid bilayer becomes more rigid and tightly packed, which increases permeability
- Cholesterol is destroyed by heat, so the bilayer becomes stronger and more impermeable
- The phospholipid bilayer becomes more fluid and proteins may denature, disrupting the membrane
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In an experiment, membrane permeability is investigated using beetroot discs in water at different temperatures. Which variable must be kept constant to make the results valid?
- The type of container, which should be changed to test whether it affects the result
- The colour of the beetroot, which should be different for each temperature tested
- The volume of water, the size of the discs and the time of immersion
- The number of discs, which should vary to see the effect on the colour of the solution
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Which statement about the phospholipid bilayer is correct?
- It is freely permeable to all water-soluble substances, such as glucose and ions, by simple diffusion
- It is a barrier to most water-soluble substances, but allows small non-polar molecules to pass through
- It is permeable only to very large molecules, which pass through the gaps between the tails
- It allows only charged ions to pass through, and rejects all non-polar molecules completely
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Why do cell membranes contain proteins that bind specific molecules?
- They replace phospholipids in the membrane, which are unable to carry any molecules across it
- They allow selective transport of molecules that cannot cross the bilayer on their own
- They make the membrane fully impermeable, so that the cell can store substances safely
- They provide energy to the membrane by breaking down glucose into carbon dioxide and water
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Which of these best describes passive transport?
- Bulk movement of substances into or out of the cell in vesicles that fuse with the membrane
- Movement of substances against a concentration gradient using energy released from ATP
- Movement of substances across a membrane down a concentration gradient without the direct use of ATP
- Movement of water through the membrane only in the presence of glycogen as a carrier molecule
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Which part of a phospholipid molecule is hydrophilic?
- The cholesterol molecules embedded within the bilayer
- The phosphate-containing head group
- The long fatty acid tails
- The hydrocarbon chains that form the core of the bilayer
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What is the main reason that small non-polar molecules such as oxygen can diffuse directly through the bilayer?
- They are carried by carrier proteins that span the whole bilayer
- They dissolve in the hydrophobic core of the bilayer
- They are charged, so they are attracted to the phosphate heads of the phospholipids
- They pass through aquaporins that are present within the bilayer
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Which change would most likely increase the fluidity of a phospholipid bilayer?
- Lowering the temperature to near freezing so that the lipids are held rigidly in place
- Adding more glycoproteins to the outer surface of the membrane to increase its rigidity
- Increasing the proportion of saturated fatty acid tails, which pack tightly together
- Increasing the proportion of unsaturated fatty acid tails, which have kinks that disrupt packing
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