Lesson 2.3.2
2.3.2 Globular and fibrous proteins: haemoglobin and collagen Quiz: Pearson Edexcel Biology A (Salters-Nuffield), Unit 2
20 questions
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Lesson 2.3.2, Globular and fibrous proteins: haemoglobin and collagen: 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
-
Which structural feature of haemoglobin allows it to carry oxygen?
- A triple helix of three polypeptides held together by covalent cross-links
- A single long fibrous chain that wraps around a central core of glycogen
- A phosphate group bound to each amino acid, which binds oxygen molecules directly
- A haem group containing an iron ion in each of its four polypeptide subunits
-
How many polypeptide subunits does a normal adult haemoglobin molecule contain?
- 1
- 4
- 2
- 3
-
Why is haemoglobin described as a globular protein?
- Its polypeptide chains are folded into a compact, roughly spherical shape with hydrophilic groups on the outside
- Its polypeptide chains are held together by cross-links in a repeating triple helix
- Its polypeptide chains are long and unfolded, forming parallel strands that are insoluble in water
- It is made of glucose units joined by glycosidic bonds into a spherical polysaccharide
-
Which feature of collagen gives it high tensile strength?
- A single globular polypeptide with a central haem group that binds to iron ions
- Three polypeptide chains wound together in a triple helix, cross-linked into fibrils
- A short chain of amino acids joined by ester bonds that forms a flexible network
- Hydrophobic interactions on the surface that repel water and keep the molecule rigid
-
Which amino acid is found at every third position in collagen's repeating sequence, allowing the three chains to pack closely?
- Glycine
- Haem
- Cysteine
- Glutamate
-
Why is collagen insoluble in water?
- It is a globular protein with charged groups on its surface that repel water
- It contains a haem group that is non-polar and so does not mix with water
- It forms long fibres with many hydrophobic regions that pack together and do not dissolve
- It is made of glucose units that are linked into an insoluble polysaccharide chain
-
Which tissues would be expected to contain large amounts of collagen?
- Red blood cells, where oxygen transport is the main requirement
- Liver cells, where glycogen is stored for energy release
- Tendons and skin, where tensile strength is needed
- Muscle cells, where contraction depends on haemoglobin
-
What is the main function of the haem group in haemoglobin?
- It binds carbon dioxide only, so that haemoglobin can transport waste from the tissues to the lungs
- It binds oxygen reversibly, allowing haemoglobin to load oxygen in the lungs and release it in tissues
- It forms the cross-links between subunits that hold the haemoglobin molecule together
- It catalyses the breakdown of glucose inside red blood cells to produce ATP for the cell
-
Why is haemoglobin's oxygen binding described as cooperative?
- Binding of one oxygen molecule blocks the other subunits, so only one oxygen can ever be carried
- Haemoglobin binds oxygen in one subunit at a time, which requires a separate enzyme for each subunit
- Binding of one oxygen molecule makes it easier for the next oxygen to bind to the other subunits
- Oxygen binds to haemoglobin only when carbon dioxide is absent, which prevents cooperation
-
What is the effect of a fall in pH on haemoglobin's affinity for oxygen, as in a respiring muscle?
- Affinity rises to zero, so no oxygen can bind in the lungs at all
- Affinity is unchanged, because pH has no effect on the shape of haemoglobin
- Affinity falls, so more oxygen is released to the muscle tissue
- Affinity rises, so more oxygen is held by haemoglobin in the muscle
-
Which change in the sequence of haemoglobin's beta chain causes sickle cell anaemia?
- A single amino acid substitution, glutamate replaced by valine, at position 6
- A change in the bases of the DNA that codes for a stop codon at the end of the chain
- An extra haem group added to each beta subunit, which changes its colour
- A deletion of the entire beta chain, so that the molecule has only two subunits
-
Why does a single amino acid change in haemoglobin cause sickle cell anaemia?
- The substitution creates a new stop codon, so only half of each haemoglobin is made
- The substitution creates a hydrophobic patch on the surface, causing haemoglobin to aggregate into fibres
- The substitution removes the haem group, so the molecule can no longer bind oxygen at all
- The substitution increases the solubility of the molecule, which makes the cell too large
-
Which description of a fibrous protein's structure is correct?
- Branched polysaccharides that are hydrolysed to glucose in the liver
- Spherical structures with a compact core containing haem groups
- Repeating sequences of amino acids form regular, long, strand-like structures
- Short peptides joined by ester bonds that form a flexible water-soluble network
-
Why is collagen well suited to resisting stretching in tendons?
- Its glycogen content allows it to expand and contract without damage
- Its globular structure allows it to deform easily and return to its original shape each time
- Its triple helix is cross-linked into strong fibrils that resist being pulled apart
- Its haem groups absorb mechanical energy when the tendon is stretched by muscle
-
Which of these describes the difference between globular and fibrous proteins in terms of solubility?
- Both globular and fibrous proteins are insoluble because they are made of amino acids
- Globular proteins are generally insoluble, whereas fibrous proteins are generally soluble
- Globular proteins are generally soluble, whereas fibrous proteins are generally insoluble
- Both globular and fibrous proteins are soluble because they contain glycosidic bonds
-
A student tests the oxygen binding of haemoglobin in a solution with a higher concentration of carbon dioxide. What is the most likely result?
- Less oxygen is bound at each partial pressure, so the dissociation curve shifts to the right
- More oxygen is bound at each partial pressure, so the dissociation curve shifts to the left
- No change occurs, because carbon dioxide has no effect on the binding of oxygen to haemoglobin
- Oxygen binds permanently, so the haemoglobin cannot release oxygen at any concentration
-
Which feature of haemoglobin is most important for its role in transport?
- A quaternary structure that allows cooperative binding of oxygen through four subunits
- A triple helix that gives it tensile strength against the pressure of blood flow
- A fibrous structure that makes it insoluble in plasma and allows it to be stored in cells
- A single polypeptide chain with no haem group, so it can move freely through the blood
-
Why is collagen rich in hydroxyproline and proline residues?
- These residues help stabilise the triple helix structure of collagen
- These residues are the sites where glycosidic bonds form to link collagen to starch
- These residues are needed for the hydrolysis of collagen by enzymes in the blood
- These residues are needed to bind the haem group that carries oxygen in collagen
-
Why is the oxygen dissociation curve of haemoglobin sigmoidal rather than a straight line?
- Haemoglobin binds oxygen only after carbon dioxide has been released, which produces a delay in the curve
- Oxygen binding is independent for each haem group, which gives a straight line across the full range
- The haem groups bind oxygen only at one pH, creating a single flat plateau with no change in affinity
- Cooperative binding means affinity increases as more oxygen binds, giving a steep middle section of the curve
-
Which of these is a fibrous protein found in hair and nails?
- Keratin
- Amylase
- Haemoglobin
- Insulin
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