Lesson 3.3.13.3
3.3.13.3 Enzymes Quiz: AQA Chemistry, Unit 3
20 questions
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Lesson 3.3.13.3, Enzymes: 20 multiple choice questions for the AQA Chemistry (7405), Unit 3: Organic chemistry, written with Revision Ninja.
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The 20 questions
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What type of molecule is an enzyme?
- A carbohydrate that stores energy
- A protein that acts as a biological catalyst
- A nucleotide that carries genetic information
- A lipid that forms cell membranes
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What is the active site of an enzyme?
- The part of the enzyme that is always a metal ion
- The end of the protein chain with the carboxylic acid group
- The region where the substrate binds and the reaction occurs
- The region where the enzyme is made in the cell
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Why does an enzyme bind only one enantiomer of a substrate?
- Enzymes are destroyed by any enantiomer present, so the reaction stops at once
- Enzymes can only bind molecules with a benzene ring in their structure at all
- Enzymes react with both enantiomers equally, so the chirality of the substrate is ignored
- The active site is a three-dimensional shape that is complementary to only one enantiomer
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How does a competitive inhibitor drug work?
- It changes the enzyme into a non-protein molecule
- It destroys the substrate molecule in the blood
- It blocks the active site so the substrate cannot bind
- It increases the rate of the enzyme-catalysed reaction
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How are computers used in the design of enzyme inhibitor drugs?
- They measure the boiling point of the enzyme, which indicates its active site shape
- They model the active site shape to predict which molecules will fit
- They synthesise the drug without any chemistry, which saves time and reagents
- They replace the need for any laboratory testing of the candidate drug molecules
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Which model describes how a substrate fits an enzyme's active site?
- Ideal gas model
- Plum pudding model
- Valence shell model
- Lock and key model
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How does an enzyme increase the rate of a reaction?
- It lowers the activation energy of the reaction
- It increases the temperature of the reaction mixture
- It raises the equilibrium constant of the reaction
- It is used up in the reaction and changes its composition
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Why might one enantiomer of a drug be active while its mirror image is inactive?
- Only one enantiomer fits the chiral active site properly
- Both enantiomers are identical in 3D shape
- The active enantiomer contains a double bond only
- The inactive enantiomer has more carbon atoms
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Why does a drug that is a racemic mixture often have lower effectiveness than a pure enantiomer?
- Racemic mixtures contain no carbon atoms
- The racemic mixture always destroys the enzyme
- Only one enantiomer binds the active site, so half of the drug is inactive
- The second enantiomer makes the drug react faster than the first
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Why is an enzyme's activity affected by temperature beyond an optimum?
- Heat converts the enzyme into a substrate
- Heat removes all carbon-carbon bonds from the substrate
- Heat makes the enzyme bind to the substrate more tightly
- Heat denatures the protein, changing the shape of the active site
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Which structural level of a protein forms the active site of an enzyme?
- Tertiary structure
- Secondary structure only
- Primary structure only
- Quaternary structure always
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Competitive inhibition can be overcome by which change?
- Removing the enzyme from the solution
- Increasing the substrate concentration
- Lowering the temperature to zero
- Adding more inhibitor molecules only
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What is the purpose of a drug that blocks an enzyme's active site?
- To prevent the enzyme from catalysing its normal reaction
- To make the substrate more stable so it resists being broken down by the enzyme
- To change the enzyme into a different protein that catalyses a new reaction
- To increase the rate of the enzyme reaction by binding the substrate more tightly
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Why must a drug fit an enzyme's active site precisely?
- Intermolecular bonds such as hydrogen bonds and ionic attractions hold the drug in place
- The drug must be a metal salt to fit into the enzyme and bind to its surface
- The drug must be larger than the enzyme so that it can cover the whole active site
- The drug has to have a double bond to bind to the active site of the enzyme
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Which statement about enzyme catalysis is correct?
- Enzymes are consumed in each catalysed reaction
- Enzymes are not used up in the reaction they catalyse
- Enzymes always increase the equilibrium yield
- Enzymes are non-protein catalysts made of metals
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Which two features of an active site ensure substrate specificity?
- Colour and molar mass of the substrate
- Number of carbon atoms in the substrate
- Shape and charge complementarity to the substrate
- Melting point and density of the substrate
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What is a stereospecific active site?
- One that is found only in aromatic compounds
- One that binds only one stereoisomer of a substrate
- One that contains a triple bond
- One that binds all isomers of a molecule equally
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Why do chemists use computers to design drugs for enzymes?
- To measure the pH of the enzyme solution directly, which is needed for the design
- To predict whether a candidate molecule will fit the active site
- To show the enzyme is a carbohydrate, which is a question of structure and not design
- To remove the need to synthesise compounds, because the computer can make them
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What is the effect of pH on an enzyme beyond its optimum?
- The enzyme changes into a sugar, which is then unable to bind the substrate at all
- The enzyme gains extra peptide links, which make the active site stronger and more rigid
- The enzyme becomes more reactive towards any substrate, which increases its activity
- Ionic and hydrogen bonds in the active site are disrupted, reducing activity
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Which statement describes an enzyme inhibitor drug that blocks the active site?
- It binds to the substrate and removes its carbon atoms
- It increases the number of active sites on the enzyme
- It makes the substrate react with water only
- It stops the natural substrate from fitting into the active site
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