Lesson 3.1.4.1.3

3.1.4.1.3 Bonds in protein structure and the biuret test: AQA Biology, Unit 1

20 questions

In partnership with Revision Ninja

Lesson 3.1.4.1.3, Bonds in protein structure and the biuret test: 20 multiple choice questions for the AQA Biology (7402), Unit 1: Biological molecules, written with Revision Ninja.

Host it live on the board and students join with a game code on their own devices, or revise alone with Free Play. The answers are revealed in the game.

Host this setFree Play

The 20 questions

  1. What is the reagent used in the biuret test for proteins?

    • Alkaline copper(II) sulfate solution, made with sodium hydroxide and dilute copper(II) sulfate
    • Iodine dissolved in potassium iodide solution, which turns blue-black in the presence of starch molecules
    • Ethanol followed by water, which forms a cloudy white emulsion when lipid molecules are present
    • Benedict's solution that is heated in a boiling water bath to reveal the presence of reducing sugars
  2. What is a positive result in the biuret test?

    • A brick-red precipitate
    • A purple or violet colour
    • A blue-black colour
    • A cloudy white emulsion
  3. What does the biuret test detect?

    • Ester bonds
    • Phosphodiester bonds
    • Peptide bonds
    • Glycosidic bonds
  4. What colour is a negative result in the biuret test?

    • Blue
    • Brick-red
    • Blue-black
    • Purple
  5. Which bond is the weakest of those that stabilise protein tertiary structure?

    • Hydrogen bond
    • Peptide bond
    • Disulfide bridge
    • Ionic bond
  6. Between which groups do ionic bonds form in a protein?

    • Two glucose units that lie on the same polypeptide chain and are linked by a glycosidic bond
    • Two peptide bonds that share a single carbon atom in the backbone of the polypeptide chain
    • Oppositely charged R groups, such as an amino group and a carboxyl group
    • Two identical amino groups that lie on different polypeptide chains within the same protein molecule
  7. Which amino acid contributes the sulfur atoms that form disulfide bridges?

    • Alanine
    • Glycine
    • Cysteine
    • Serine
  8. A solution of a protein gives a purple colour with the biuret reagent. What can be concluded?

    • Starch is present, because purple is the iodine colour for starch
    • Glucose is present in high concentration in the solution
    • Peptide bonds are present, so protein is present in the solution
    • Lipid is present, because the biuret test detects triglycerides
  9. A dipeptide solution is tested with the biuret reagent. What is the likely result, and why?

    • Blue, because a dipeptide has only one peptide bond and the test needs at least two
    • Purple, because a dipeptide has one peptide bond that reacts strongly
    • Brick-red, because the dipeptide contains a reducing sugar
    • Blue-black, because the dipeptide contains starch
  10. A glucose solution is tested with the biuret reagent and stays blue. Why?

    • Glucose is a non-reducing sugar, which stops the copper from reacting
    • Glucose contains a high proportion of starch, which blocks the biuret reaction
    • Glucose contains no peptide bonds, so the biuret test is negative
    • The biuret reagent only detects fats, so glucose is never detected
  11. A colorimeter reading of biuret-treated protein standards is 0.8 at 2 mg/cm3 and 1.6 at 4 mg/cm3. An unknown gives 1.2. What is the protein concentration?

    • 6 mg/cm3
    • 2.4 mg/cm3
    • 2 mg/cm3
    • 3 mg/cm3
  12. A pentapeptide (five amino acids) is tested with the biuret reagent. What is the expected result?

    • Purple, because it contains four peptide bonds, which is more than the minimum needed
    • Brick-red, because the pentapeptide is a reducing sugar that reduces the copper ions present
    • Blue, because a pentapeptide of this kind contains only one peptide bond available to react
    • Blue-black, because the pentapeptide contains starch granules that react with the iodine
  13. Which bond type is involved in hydrophobic interactions within protein tertiary structure?

    • Ionic bonds formed between two oppositely charged sugar units attached to the protein surface
    • Glycosidic bonds formed between two amino acid side chains that are close together in space
    • Non-polar R groups clustering away from water, held by weak interactions
    • Covalent bonds formed between two phosphate groups that lie on the surface of the protein
  14. A student says the biuret test proves that a sample contains only protein. Which evaluation is correct?

    • Correct, because the biuret test is specific to protein and does not react with any other substance at all with no exceptions
    • Incorrect, because the test shows peptide bonds are present but cannot show the sample is free of other substances
    • Incorrect, because the biuret test cannot detect protein at all, and it only detects simple sugars
    • Correct, because a purple colour rules out any carbohydrate being present anywhere in the sample
  15. Why do free amino acids give a negative biuret result even though they contain amine and carboxyl groups?

    • They are hydrolysed by the biuret reagent, which destroys the copper complex as it forms
    • They contain no amine groups, so the biuret reagent has nothing to react with in the solution
    • They have no peptide bonds, because the amine and carboxyl groups have not been linked by condensation
    • They are too small to bind copper ions, so the characteristic purple colour does not develop
  16. Why does the biuret test require alkaline conditions?

    • The alkaline conditions ensure that the protein is fully hydrolysed into free amino acids before the test
    • The alkaline conditions allow copper(II) ions to form a coloured complex with the nitrogen atoms of peptide bonds
    • The alkaline conditions break the peptide bonds in the protein, releasing free nitrogen atoms into solution with no exceptions
    • The alkaline conditions convert the copper into a gas that then reacts with the protein in the sample
  17. Heating a protein breaks its weak bonds but not its peptide bonds. Explain why the primary structure is unaffected.

    • Peptide bonds are glycosidic in nature, so heat cannot break them under any of the normal conditions
    • Peptide bonds are hydrogen bonds, which are strong enough to resist heating without being broken at all
    • Peptide bonds are ionic bonds, and heat only affects covalent bonds, so the peptide backbone is left intact
    • Peptide bonds are strong covalent bonds, whereas heat disrupts the weaker hydrogen and ionic interactions
  18. A protein sample is diluted so the biuret reaction gives a pale lilac colour. What does this indicate?

    • A higher concentration of protein than a purple sample
    • A lower concentration of peptide bonds than a strong purple sample
    • That the biuret reagent has expired and cannot react
    • The presence of starch in the sample instead of protein
  19. Explain why ionic bonds in a protein can be broken by a change in pH but peptide bonds cannot be broken in the same way.

    • Peptide bonds are charged and so are neutralised by a change in pH, forming free amino acids in solution
    • Ionic bonds are covalent and so are broken by pH, while peptide bonds are weak ionic bonds in the chain
    • Ionic bonds depend on the charge of R groups, which pH alters, while peptide bonds are strong covalent links needing hydrolysis
    • Ionic bonds involve phosphate groups, which pH converts into peptide bonds that strengthen the protein
  20. A student tests a sample with biuret reagent and gets a purple colour. The student concludes that the protein has a quaternary structure. Which evaluation is correct?

    • Unsupported, because the biuret test detects peptide bonds and cannot reveal whether the protein has quaternary structure
    • Unsupported, because the biuret test cannot detect any peptide bonds at all, so it gives no result
    • Supported, because the biuret test measures the number of protein subunits in the sample directly
    • Supported, because a purple colour appears only in proteins that have a quaternary structure of subunits

All AQA Biology quizzes