Unit 2: Protein chemistry - Practice Quiz

BTY269 — Biophysics 60 Questions
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1 Which of the following is the primary function of enzymes as proteins?

Protein Function Easy
A. Serving as an energy currency molecule
B. Forming the lipid bilayer
C. Storing genetic information
D. Catalyzing biochemical reactions

2 Hemoglobin is an example of a protein that primarily functions in:

Protein Function Easy
A. Membrane synthesis
B. DNA replication
C. Muscle contraction
D. Oxygen transport

3 Which type of protein provides structural support in tissues such as skin, tendons, and bone?

Protein Function Easy
A. Amylase
B. Myoglobin
C. Insulin
D. Collagen

4 Antibodies are proteins that function mainly in:

Protein Function Easy
A. Oxygen storage
B. Energy production
C. Hormone signaling
D. Immune defense

5 The primary structure of a protein refers to:

Hierarchical Structure of Proteins Easy
A. The linear sequence of amino acids
B. The folding into an alpha helix
C. The overall 3D shape of a single chain
D. The assembly of multiple polypeptide subunits

6 Which level of protein structure describes local folding patterns such as -helices and -sheets?

Hierarchical Structure of Proteins Easy
A. Primary structure
B. Tertiary structure
C. Quaternary structure
D. Secondary structure

7 The quaternary structure of a protein is defined by:

Hierarchical Structure of Proteins Easy
A. The arrangement of multiple polypeptide subunits
B. The presence of a single alpha helix
C. The sequence of amino acids
D. The peptide bond geometry

8 Which type of bond primarily stabilizes the secondary structure of proteins?

Hierarchical Structure of Proteins Easy
A. Peptide bonds
B. Disulfide bonds
C. Ionic bonds
D. Hydrogen bonds

9 The complete three-dimensional shape of a single folded polypeptide chain is called its:

Hierarchical Structure of Proteins Easy
A. Quaternary structure
B. Primary structure
C. Secondary structure
D. Tertiary structure

10 The torsional angle around the bond in a protein backbone is denoted by:

Torsional angles in proteins and nucleic acids Easy
A. (chi)
B. (psi)
C. (phi)
D. (omega)

11 A Ramachandran plot is used to display allowed combinations of which two angles?

Torsional angles in proteins and nucleic acids Easy
A. and
B. and
C. and
D. and

12 The torsional angle (psi) describes rotation about which backbone bond?

Torsional angles in proteins and nucleic acids Easy
A. bond
B. bond
C. The side chain bond
D. The peptide bond

13 The peptide bond ( angle) is usually found to be:

Torsional angles in proteins and nucleic acids Easy
A. Randomly oriented in space
B. Planar and mostly trans
C. Freely rotating
D. Always cis in configuration

14 The rigidity of the peptide bond is due to its:

Torsional angles in proteins and nucleic acids Easy
A. Ionic interactions
B. Hydrophobic packing
C. Hydrogen bonding only
D. Partial double-bond character

15 Circular Dichroism (CD) spectroscopy measures the differential absorption of:

Characterization of secondary structure using CD Easy
A. X-rays and gamma rays
B. Ultraviolet and visible light
C. Left- and right-handed circularly polarized light
D. Infrared and microwave radiation

16 In the far-UV region, CD spectroscopy is mainly used to determine the:

Characterization of secondary structure using CD Easy
A. Molecular weight of proteins
B. Secondary structure content of proteins
C. Number of subunits in a protein
D. Amino acid sequence of proteins

17 An -helical protein typically shows a characteristic CD spectrum with:

Characterization of secondary structure using CD Easy
A. Two negative minima near 208 nm and 222 nm
B. A strong maximum at 280 nm from aromatic residues
C. A flat baseline across all wavelengths
D. A single positive peak at 260 nm

18 CD spectroscopy can detect protein secondary structure because proteins are:

Characterization of secondary structure using CD Easy
A. Insoluble in water
B. Chiral (optically active)
C. Made only of nonpolar residues
D. Electrically neutral

19 The process by which a protein loses its native structure due to heat or chemicals is called:

Protein stability and folding Easy
A. Phosphorylation
B. Translation
C. Replication
D. Denaturation

20 Which interaction is considered a major driving force for protein folding in aqueous solution?

Protein stability and folding Easy
A. The hydrophobic effect
B. Metallic bonding
C. Covalent peptide bonding
D. Gravitational attraction

21 In a Ramachandran plot, the fully allowed region for right-handed -helices corresponds approximately to which combination of backbone dihedral angles?

Torsional angles in proteins and nucleic acids Medium
A.
B.
C.
D.

22 Why does glycine occupy a uniquely broad region of allowed space in the Ramachandran plot compared to other amino acids?

Torsional angles in proteins and nucleic acids Medium
A. It carries a positive charge that repels the backbone carbonyl
B. Its side chain is a single hydrogen atom, reducing steric hindrance
C. Its peptide bond adopts a cis configuration more readily
D. Its side chain forms an extra hydrogen bond stabilizing rotation

23 The peptide bond dihedral angle is usually restricted to approximately . What is the primary reason for this restriction?

Torsional angles in proteins and nucleic acids Medium
A. Hydrogen bonding between amide protons of neighboring residues
B. Partial double-bond character from resonance keeps the bond planar
C. Steric clash between successive side chains forcing planarity
D. Electrostatic repulsion between adjacent -carbons

24 A protein CD spectrum in the far-UV region shows two negative minima at nm and nm and a positive maximum near nm. Which secondary structure dominates?

Characterization of secondary structure using CD Medium
A. Random coil
B. -helix
C. Antiparallel -sheet
D. Polyproline II helix

25 Circular dichroism measures which physical quantity as a function of wavelength?

Characterization of secondary structure using CD Medium
A. Differential absorption of left- and right-circularly polarized light
B. Fluorescence emission intensity after UV excitation
C. Total absorption of unpolarized UV light by aromatic residues
D. Rotation of the plane of linearly polarized light

26 Why is the far-UV region (– nm) most informative for determining protein secondary structure by CD?

Characterization of secondary structure using CD Medium
A. The peptide backbone amide bonds are the dominant chromophores there
B. Water absorption dominates and cancels background noise
C. Aromatic side chains absorb strongly and report tertiary contacts
D. Disulfide bonds give sharp bands revealing folding topology

27 Which level of protein structure is defined solely by the linear sequence of amino acids connected by peptide bonds?

Hierarchical Structure of Proteins Medium
A. Tertiary structure
B. Quaternary structure
C. Secondary structure
D. Primary structure

28 The clustering of nonpolar side chains in the interior of a globular protein, away from water, is the primary organizing force for which structural level?

Hierarchical Structure of Proteins Medium
A. Tertiary structure
B. Secondary structure
C. The peptide bond geometry
D. Primary structure

29 Hemoglobin consists of two and two subunits assembled into a functional tetramer. This arrangement is an example of which structural level?

Hierarchical Structure of Proteins Medium
A. Tertiary structure
B. Supersecondary structure
C. Quaternary structure
D. Secondary structure

30 In an antiparallel -sheet, the hydrogen bonds between strands are best described as:

Hierarchical Structure of Proteins Medium
A. Bent and unevenly spaced compared to parallel sheets
B. Absent, with strands held only by hydrophobic contacts
C. Nearly linear and evenly spaced between opposing strands
D. Formed exclusively within a single strand's residues

31 An enzyme's catalytic activity is abolished when a single active-site histidine is mutated to alanine, though the protein still folds normally. This best illustrates that:

Protein Function Medium
A. The mutation destabilizes the entire tertiary structure
B. Secondary structure alone determines catalytic activity
C. Histidine is required for peptide bond formation
D. Specific residues, not just overall fold, are essential for function

32 The binding of oxygen to one subunit of hemoglobin increases the oxygen affinity of the remaining subunits. This behavior is termed:

Protein Function Medium
A. Positive cooperativity
B. Allosteric inhibition
C. Competitive inhibition
D. Non-cooperative binding

33 A structural protein such as collagen relies on which feature to achieve high tensile strength?

Protein Function Medium
A. A tightly wound triple-helical arrangement of polypeptide chains
B. Rapid conformational switching between two states
C. A globular fold with a deep hydrophobic binding pocket
D. A single -helix stabilized by disulfide bonds

34 Which statement best explains the specificity of an enzyme for its substrate under the induced-fit model?

Protein Function Medium
A. The substrate must exactly match a completely rigid active site
B. The enzyme binds any molecule of similar molecular weight
C. Specificity arises only from covalent bonds to the substrate
D. The enzyme changes shape upon substrate binding to optimize contacts

35 The dominant thermodynamic driving force for the folding of a globular protein in aqueous solution is:

Protein stability and folding Medium
A. Van der Waals attractions between backbone atoms
B. Electrostatic repulsion between charged side chains
C. Formation of covalent disulfide bonds
D. The hydrophobic effect from burying nonpolar residues

36 The net free energy of stabilization () for a typical folded protein is only about – kcal/mol. What does this small value imply?

Protein stability and folding Medium
A. Folding is driven entirely by enthalpy with no entropic cost
B. Folded proteins are only marginally stable relative to unfolded states
C. The folded and unfolded states have identical free energies
D. Proteins are extremely rigid and never unfold spontaneously

37 Levinthal's paradox highlights that proteins cannot fold by randomly sampling all conformations. The resolution most widely accepted is that:

Protein stability and folding Medium
A. Folding follows directed pathways down an energy funnel
B. Proteins fold instantaneously with no intermediate states
C. Chaperones covalently lock the final fold in place
D. The native state is chosen by pure thermodynamic chance

38 A protein is heated and its CD signal at nm gradually disappears with a sharp sigmoidal transition. This observation indicates:

Protein stability and folding Medium
A. Formation of additional -sheet upon heating
B. An increase in disulfide bond content at high temperature
C. Reversible aggregation without secondary structure loss
D. Cooperative loss of -helical structure during denaturation

39 Adding a high concentration of urea to a protein solution typically causes unfolding because urea:

Protein stability and folding Medium
A. Forms strong covalent bonds with backbone carbonyls
B. Increases the entropy of the folded native state
C. Cross-links side chains to lock in a misfolded state
D. Weakens the hydrophobic effect and solvates exposed groups

40 A CD spectrum showing a single broad negative minimum near nm and a positive band near nm is most consistent with which secondary structure?

Characterization of secondary structure using CD Medium
A. Random coil
B. -helix
C. -helix
D. -sheet

41 In a Ramachandran plot, glycine occupies regions forbidden to other residues. Which combination of values would be sterically allowed for glycine but strongly disfavored for L-alanine?

Torsional angles in proteins and nucleic acids Hard
A.
B.
C.
D.

42 A protein shows a far-UV CD spectrum with double minima at 208 nm and 222 nm and a maximum near 190 nm. Upon heating, the 222 nm signal approaches zero and a single deep minimum near 200 nm appears. What is the correct interpretation?

Characterization of secondary structure using CD Hard
A. Transition from -helix to random coil
B. Transition from random coil to -sheet
C. Conversion of aromatic residues to disordered state
D. Transition from -sheet to -helix

43 For a two-state folding equilibrium, the fraction folded is 0.90 at 25°C. If where , what is the approximate of unfolding at this temperature ( kJ/mol)?

Protein stability and folding Hard
A. kJ/mol
B. kJ/mol
C. kJ/mol
D. kJ/mol

44 The Anfinsen ribonuclease refolding experiment demonstrated a key principle, but reoxidation in the presence of a scrambling agent (urea + trace mercaptoethanol) initially gave only ~1% activity. What does this observation establish?

Hierarchical Structure of Proteins Hard
A. Native structure is the thermodynamically most stable state under physiological conditions
B. Disulfide bonds form randomly and are kinetically trapped permanently
C. Folding requires chaperones even in vitro
D. The primary sequence does not determine tertiary structure

45 The peptide bond torsion angle is typically restricted to ~180° (trans). For which residue is the cis conformation () most frequently observed, and why?

Torsional angles in proteins and nucleic acids Hard
A. Alanine, because its methyl group stabilizes the cis form
B. Proline, because cis and trans X–Pro bonds have comparable steric energy
C. Cysteine, because disulfide constraints favor cis peptide bonds
D. Glycine, because it has no side chain to cause steric hindrance

46 The hydrophobic effect is the dominant driving force in protein folding. At room temperature, its favorable contribution is primarily driven by:

Protein stability and folding Hard
A. A favorable enthalpy change from van der Waals contacts in the core
B. A favorable entropy change of the polypeptide backbone
C. An unfavorable enthalpy compensated by hydrogen bonding
D. A favorable entropy change from releasing ordered water around nonpolar groups

47 Near-UV CD (250–320 nm) of a protein probes tertiary structure through aromatic and disulfide chromophores. A protein retains full far-UV CD signal but loses all near-UV CD signal upon mild denaturation. This is the signature of:

Characterization of secondary structure using CD Hard
A. A molten globule state
B. Complete random coil formation
C. A domain-swapped dimer
D. An amyloid fibril

48 Hemoglobin's cooperative binding is described by the Hill equation. If a Hill plot yields a slope for a tetramer, what is the correct interpretation?

Protein Function Hard
A. Exactly three oxygen molecules bind before saturation
B. Negative cooperativity among the four binding sites
C. Positive cooperativity that is less than the theoretical maximum for four sites
D. Non-cooperative binding identical to myoglobin

49 In a parallel -sheet versus an antiparallel -sheet, the hydrogen bonding geometry differs. Which statement correctly distinguishes them?

Hierarchical Structure of Proteins Hard
A. Parallel sheets have narrowly spaced linear H-bonds; antiparallel sheets have no inter-strand H-bonds
B. Antiparallel sheets lack inter-strand H-bonds and rely on disulfides
C. Both have identical H-bond geometry but differ only in side-chain orientation
D. Antiparallel sheets have narrowly spaced, nearly linear H-bonds; parallel sheets have evenly spaced but distorted H-bonds

50 In nucleic acids, the glycosidic torsion angle distinguishes syn and anti conformations. Which statement about B-DNA and Z-DNA is correct?

Torsional angles in proteins and nucleic acids Hard
A. B-DNA has all bases syn; Z-DNA has all bases anti
B. B-DNA has all bases anti; Z-DNA has purines syn and pyrimidines anti
C. Both B-DNA and Z-DNA have all bases in the syn conformation
D. Z-DNA has purines anti and pyrimidines syn, opposite of B-DNA

51 Cold denaturation of proteins occurs at low temperatures where becomes negative. This counterintuitive phenomenon arises because:

Protein stability and folding Hard
A. The temperature dependence of is parabolic due to a large positive of unfolding
B. Disulfide bonds spontaneously break at low temperature
C. Hydrogen bonds become stronger at low temperature, destabilizing the core
D. Backbone entropy increases sharply as temperature drops

52 The mean residue ellipticity at 222 nm can estimate helix content. If a fully helical reference gives deg·cm²·dmol⁻¹ and a sample gives , what is the approximate helical fraction (ignoring coil baseline)?

Characterization of secondary structure using CD Hard
A.
B.
C.
D.

53 An enzyme follows Michaelis–Menten kinetics with and M. A competing enzyme has and M. At very low substrate concentration (), which enzyme is catalytically more efficient?

Protein Function Hard
A. The second enzyme, because is higher
B. The first enzyme, because is higher
C. The first enzyme, because is higher
D. Both are equally efficient at low

54 Levinthal's paradox argues that random conformational search cannot explain folding times. The modern resolution invokes a folding funnel. Which statement best captures this concept?

Protein stability and folding Hard
A. Chaperones physically thread the chain into its native fold
B. Folding is purely diffusion-limited with no thermodynamic bias
C. A biased energy landscape guides the chain downhill through many parallel pathways to the native state
D. A single unique pathway with defined intermediates is followed by every molecule

55 A helix differs from an -helix. Which pair of features correctly characterizes the helix relative to the -helix?

Hierarchical Structure of Proteins Hard
A. hydrogen bonding and 3.6 residues per turn
B. hydrogen bonding and 3.6 residues per turn
C. hydrogen bonding and 3 residues per turn
D. hydrogen bonding and 4.4 residues per turn

56 The dihedral angles (about N–C) and (about C–C) define backbone conformation. For an idealized right-handed -helix, which approximate values apply?

Torsional angles in proteins and nucleic acids Hard
A.
B.
C.
D.

57 Allosteric regulation is often described by the MWC (concerted) model. A key prediction of the MWC model that distinguishes it from the KNF (sequential) model is that:

Protein Function Hard
A. Ligand binding induces conformational change only in the bound subunit
B. Subunits change conformation one at a time as ligand binds
C. All subunits switch conformation simultaneously; the model cannot produce negative cooperativity
D. Negative cooperativity is the primary predicted behavior

58 A protein has kJ/mol and kJ·mol⁻¹·K⁻¹ for unfolding (assumed T-independent). Estimate its melting temperature (where ).

Protein stability and folding Hard
A. K
B. K
C. K
D. K

59 CD signals arise from differential absorption of left- and right-circularly polarized light by chiral chromophores. In far-UV protein CD, the dominant chromophore giving secondary-structure information is:

Characterization of secondary structure using CD Hard
A. The peptide (amide) bond and transitions
B. Disulfide bonds between cysteine residues
C. Aromatic side chains of tryptophan and tyrosine
D. The -carbon chiral centers directly

60 Quaternary structure stabilization frequently relies on buried interface area. In a domain-swapped dimer, the mechanism of oligomerization is best described as:

Hierarchical Structure of Proteins Hard
A. Formation of a continuous -barrel spanning both subunits with no shared elements
B. Random aggregation driven purely by charge neutralization
C. Exchange of an equivalent structural element between two monomers to recreate the monomeric fold intermolecularly
D. Covalent crosslinking of subunits via engineered disulfides only