Unit 1: Introduction to biophysics - Practice Quiz

BTY269 — Biophysics 60 Questions
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1 Which of the following is the monomer (building block) of proteins?

Biomolecules Easy
A. Monosaccharides
B. Fatty acids
C. Nucleotides
D. Amino acids

2 Which biomolecule serves as the primary source of quick energy in cells?

Biomolecules Easy
A. Nucleic acids
B. Proteins
C. Carbohydrates
D. Lipids

3 The monomer units that make up nucleic acids are called:

Biomolecules Easy
A. Nucleotides
B. Amino acids
C. Peptides
D. Glycerols

4 Which of the following is a major function of lipids in living organisms?

Biomolecules Easy
A. Long-term energy storage
B. Transmitting nerve signals only
C. Catalyzing reactions
D. Storing genetic code

5 A nucleotide is composed of a nitrogenous base, a phosphate group, and a:

Biomolecules Easy
A. Amino acid
B. Six-carbon sugar
C. Five-carbon sugar
D. Fatty acid

6 Which type of bond holds the two strands of the DNA double helix together?

Chemical Bonds in Biochemistry Easy
A. Hydrogen bonds
B. Ionic bonds
C. Phosphodiester bonds
D. Peptide bonds

7 The bond that links two amino acids together in a protein is called a:

Chemical Bonds in Biochemistry Easy
A. Peptide bond
B. Glycosidic bond
C. Ester bond
D. Hydrogen bond

8 Which of the following is generally the strongest type of chemical bond?

Chemical Bonds in Biochemistry Easy
A. Van der Waals interaction
B. Dipole-dipole interaction
C. Hydrogen bond
D. Covalent bond

9 The backbone of a DNA strand is held together by which type of bond?

Chemical Bonds in Biochemistry Easy
A. Peptide bonds
B. Hydrogen bonds
C. Phosphodiester bonds
D. Disulfide bonds

10 Weak interactions between nonpolar molecules that arise from temporary charge fluctuations are called:

Chemical Bonds in Biochemistry Easy
A. Covalent bonds
B. Ionic bonds
C. Van der Waals forces
D. Phosphodiester bonds

11 The most common form of DNA found in living cells under physiological conditions is:

Conformational Changes in DNA Molecules Easy
A. Z-DNA
B. B-DNA
C. C-DNA
D. A-DNA

12 Which DNA conformation is a left-handed helix?

Conformational Changes in DNA Molecules Easy
A. Z-DNA
B. B-DNA
C. A-DNA
D. R-DNA

13 The process by which double-stranded DNA separates into single strands is called:

Conformational Changes in DNA Molecules Easy
A. Replication
B. Renaturation
C. Denaturation
D. Transcription

14 The temperature at which half of the DNA molecules are denatured is known as the:

Conformational Changes in DNA Molecules Easy
A. Melting temperature ()
B. Freezing point
C. Boiling point
D. Critical temperature

15 DNA rich in which base pair has a higher melting temperature?

Conformational Changes in DNA Molecules Easy
A. A-U pairs
B. G-C pairs
C. T-U pairs
D. A-T pairs

16 The process of synthesizing RNA from a DNA template is called:

From DNA to RNA Easy
A. Transformation
B. Translation
C. Replication
D. Transcription

17 Which enzyme is primarily responsible for synthesizing RNA during transcription?

From DNA to RNA Easy
A. DNA polymerase
B. DNA ligase
C. Helicase
D. RNA polymerase

18 In RNA, which base replaces thymine that is found in DNA?

From DNA to RNA Easy
A. Cytosine
B. Guanine
C. Adenine
D. Uracil

19 Which type of RNA carries the genetic message from DNA to the ribosome?

The Biophysics of RNA Easy
A. Messenger RNA (mRNA)
B. Transfer RNA (tRNA)
C. Small nuclear RNA (snRNA)
D. Ribosomal RNA (rRNA)

20 Compared to DNA, RNA molecules are usually:

The Biophysics of RNA Easy
A. Double-stranded
B. Single-stranded
C. Always circular
D. Triple-stranded

21 A polypeptide is being synthesized in which the amino acids are joined together. Which type of covalent linkage forms between adjacent amino acid residues?

Biomolecules Medium
A. Glycosidic bond
B. Phosphodiester bond
C. Peptide bond
D. Ester bond

22 A biochemist isolates a biomolecule that yields glucose and fructose upon hydrolysis. Which macromolecule class and specific compound does this most likely represent?

Biomolecules Medium
A. A lipid (triglyceride)
B. A monosaccharide (glucose)
C. A disaccharide (sucrose)
D. A polysaccharide (glycogen)

23 Which structural feature primarily determines whether a fatty acid is classified as saturated or unsaturated?

Biomolecules Medium
A. The number of carboxyl groups
B. The presence or absence of carbon-carbon double bonds in the hydrocarbon chain
C. The length of the chain
D. The type of alcohol in the ester

24 Which of the following interactions is generally the strongest per bond in a biological system?

Chemical Bonds in Biochemistry Medium
A. Ionic interaction in aqueous solution
B. Van der Waals interaction
C. Hydrogen bond
D. Covalent bond

25 The stability of protein secondary structures such as the -helix and -sheet is primarily maintained by which type of interaction?

Chemical Bonds in Biochemistry Medium
A. Peptide bonds within side chains
B. Hydrogen bonds between backbone amide and carbonyl groups
C. Disulfide bridges between all residues
D. Metallic bonds among carbon atoms

26 The hydrophobic effect drives the folding of globular proteins mainly because

Chemical Bonds in Biochemistry Medium
A. nonpolar groups cluster together to minimize disruption of the ordered water hydrogen-bond network, increasing the entropy of the surrounding water molecules
B. polar residues are repelled into the protein core
C. water forms strong covalent bonds with nonpolar residues
D. nonpolar groups form covalent bonds with each other

27 Two cysteine residues in a folded protein can form a covalent cross-link. What is this bond called and what conditions favor it?

Chemical Bonds in Biochemistry Medium
A. Hydrogen bond, favored under reducing conditions
B. Disulfide bond, favored under oxidizing conditions
C. Peptide bond, favored at high temperature
D. Ionic bond, favored at low pH

28 Which DNA conformation is a left-handed helix typically favored by alternating purine-pyrimidine sequences under high salt conditions?

Conformational Changes in DNA Molecules Medium
A. Cruciform DNA
B. A-DNA
C. B-DNA
D. Z-DNA

29 Compared to B-DNA, A-DNA is best described as

Conformational Changes in DNA Molecules Medium
A. a left-handed helix with a zig-zag backbone
B. a right-handed helix that is shorter and wider, commonly adopted under dehydrated conditions
C. an unwound single-stranded structure
D. a triple-stranded helix stabilized by Hoogsteen pairing

30 During DNA denaturation (melting), which measurable property increases as the double helix separates into single strands?

Conformational Changes in DNA Molecules Medium
A. Viscosity of the solution
B. Negative supercoiling density
C. UV absorbance at 260 nm (hyperchromic effect)
D. Number of hydrogen bonds

31 A DNA sample with a higher G-C content will generally have a melting temperature () that is

Conformational Changes in DNA Molecules Medium
A. higher, because G-C pairs have three hydrogen bonds versus two in A-T pairs
B. higher, only because G-C pairs are physically larger
C. unchanged, since base composition does not affect stability
D. lower, because G-C pairs are less stable

32 Negative supercoiling of a closed circular DNA molecule tends to

Conformational Changes in DNA Molecules Medium
A. prevent any topoisomerase activity
B. increase the number of base pairs per turn
C. facilitate strand separation needed for replication and transcription
D. convert B-DNA irreversibly into A-DNA

33 During transcription, which enzyme synthesizes an RNA strand complementary to the DNA template?

From DNA to RNA Medium
A. DNA polymerase
B. Reverse transcriptase
C. Ligase
D. RNA polymerase

34 If the DNA template strand reads , what is the sequence of the transcribed mRNA?

From DNA to RNA Medium
A.
B.
C.
D.

35 Which of the following is a post-transcriptional modification of eukaryotic pre-mRNA?

From DNA to RNA Medium
A. Ligation of DNA nicks by ligase
B. Proofreading by DNA polymerase
C. Addition of a 5' cap and a 3' poly-A tail with splicing of introns
D. Formation of Okazaki fragments

36 The key chemical difference between the sugar in RNA and DNA is that

From DNA to RNA Medium
A. ribose has a hydroxyl group at the 2' carbon, while deoxyribose has only hydrogen there
B. ribose lacks an oxygen at the 3' carbon
C. ribose is a six-carbon sugar and deoxyribose is a five-carbon sugar
D. deoxyribose has an extra hydroxyl at the 2' carbon

37 Why is single-stranded RNA generally less chemically stable than double-stranded DNA?

The Biophysics of RNA Medium
A. RNA cannot form any secondary structure
B. RNA has more hydrogen bonds per base pair
C. RNA contains thymine instead of uracil
D. The 2'-OH group of ribose can attack the phosphodiester backbone, promoting hydrolysis

38 A tRNA molecule adopts a characteristic cloverleaf secondary structure and an L-shaped tertiary structure. This folding is primarily stabilized by

The Biophysics of RNA Medium
A. disulfide bridges between bases
B. intramolecular base pairing and base stacking within the single RNA strand
C. covalent bonds to a complementary DNA strand
D. peptide bonds between ribonucleotides

39 Ribozymes demonstrate an important biophysical property of RNA. What is that property?

The Biophysics of RNA Medium
A. RNA can only store genetic information
B. RNA is always double-stranded
C. RNA can act as a catalyst, accelerating specific biochemical reactions
D. RNA cannot fold into three-dimensional structures

40 In RNA secondary structure, which non-canonical base pair is especially common and adds to structural diversity?

The Biophysics of RNA Medium
A. A-C standard pair
B. G-U wobble pair
C. C-C pair
D. T-A pair

41 A protein is denatured such that its tertiary structure is lost but its primary structure remains intact. Which statement best explains why the protein can sometimes spontaneously refold to its native state?

Biomolecules Hard
A. The peptide bonds break and reform in the correct order during refolding
B. The amino acid sequence encodes all the thermodynamic information needed to reach the native conformation, which typically corresponds to a free-energy minimum
C. Refolding requires covalent modification of the side chains to proceed
D. The ribosome must re-translate the protein to restore folding

42 Consider a polysaccharide composed solely of -D-glucose units. Which structural feature distinguishes glycogen from amylose despite both being glucose polymers?

Biomolecules Hard
A. Amylose contains linkages like cellulose
B. Glycogen is built exclusively from -D-glucose
C. Glycogen contains branch points roughly every 8–12 residues in addition to linkages
D. Glycogen lacks any linkages

43 At physiological pH (7.4), which statement about the net charge of the amino acid glutamate (side-chain , -carboxyl , -amino ) is correct?

Biomolecules Hard
A. The net charge is because all ionizable groups are fully deprotonated
B. The net charge is because it is at its isoelectric point
C. The net charge is because the amino group dominates
D. The net charge is because both carboxyl groups are deprotonated and the amino group is protonated

44 The energy of a hydrogen bond in biological systems is typically in the range of – kJ/mol, while a typical C–C covalent bond is about kJ/mol. Why are the weaker hydrogen bonds nonetheless critical for biological specificity?

Chemical Bonds in Biochemistry Hard
A. They provide the primary covalent framework that holds proteins together
B. They cannot be broken at body temperature, ensuring permanent structures
C. Their weakness allows reversible formation and breaking under physiological conditions, and their directionality enforces precise molecular recognition
D. They are stronger than covalent bonds when many are combined into a single localized site

45 The hydrophobic effect is a major driving force in protein folding. Which thermodynamic explanation best accounts for it?

Chemical Bonds in Biochemistry Hard
A. It arises from a large negative due to hydrogen bonds forming between water and hydrophobic side chains
B. It is an enthalpy-driven process where nonpolar groups form covalent bonds with each other
C. Burial of nonpolar groups increases the entropy of surrounding water by releasing ordered solvation shells, making favorable
D. It is driven by strong attractive van der Waals forces between water and nonpolar groups

46 Van der Waals interactions have an optimal distance and become repulsive if atoms approach too closely. Which relationship best describes the attractive (London dispersion) component of the interaction energy with distance ?

Chemical Bonds in Biochemistry Hard
A. It scales as
B. It scales as
C. It scales as
D. It scales as

47 A DNA sequence rich in alternating purine-pyrimidine (e.g., ) can adopt Z-DNA under high salt conditions. Which structural characteristic uniquely defines Z-DNA?

Conformational Changes in DNA Molecules Hard
A. A left-handed helix with the widest major groove among all DNA forms and 11 base pairs per turn
B. A left-handed helix with a zigzag phosphate backbone and about 12 base pairs per turn
C. A right-handed helix identical to B-DNA but with a shorter rise per base pair
D. A right-handed helix with a wide major groove and 10 base pairs per turn

48 Under dehydrating conditions (around 75% relative humidity), B-DNA transitions to A-DNA. Which change accompanies this transition?

Conformational Changes in DNA Molecules Hard
A. The base pairs become perpendicular to the axis and the helix elongates dramatically
B. The base pairs tilt relative to the helix axis and the helix becomes wider and shorter with a deep major groove
C. The double helix separates completely into two single strands
D. The helix becomes left-handed with a zigzag backbone

49 A circular DNA molecule has a linking number . If its relaxed linking number , what is the superhelical density (to two decimal places)?

Conformational Changes in DNA Molecules Hard
A.
B.
C.
D.

50 Negative supercoiling of DNA is biologically important because it:

Conformational Changes in DNA Molecules Hard
A. Prevents any local unwinding, thereby stabilizing the double helix permanently
B. Facilitates strand separation required for replication and transcription by storing torsional energy
C. Converts all B-DNA into Z-DNA irreversibly
D. Increases the melting temperature so that strands can never separate

51 During transcription, RNA polymerase synthesizes RNA using the template (antisense) strand. If the coding (sense) strand reads -ATGCGT-, what is the corresponding RNA sequence?

From DNA to RNA Hard
A. -AUGCGU-
B. -TACGCA-
C. -ACGCAU-
D. -UACGCA-

52 In eukaryotic pre-mRNA processing, which set of modifications is essential before the mRNA can be exported and efficiently translated?

From DNA to RNA Hard
A. Addition of a poly-U tail and removal of the 5' cap
B. 5' polyadenylation, 3' capping, and reverse transcription
C. Only removal of exons while retaining introns
D. 5' 7-methylguanosine cap, splicing of introns, and 3' polyadenylation

53 RNA polymerase differs from DNA polymerase in a fundamental way that has consequences for transcriptional fidelity. Which difference is correct?

From DNA to RNA Hard
A. RNA polymerase synthesizes in the direction unlike DNA polymerase
B. RNA polymerase copies the coding strand directly and never reads the template strand
C. RNA polymerase requires a primer and has stronger proofreading than DNA polymerase
D. RNA polymerase can initiate synthesis de novo without a primer but generally lacks robust proofreading exonuclease activity

54 A mutation in a promoter's element (Pribnow box, consensus TATAAT in prokaryotes) most directly affects:

From DNA to RNA Hard
A. The amino acid sequence of the resulting protein through altered codons
B. The efficiency of RNA polymerase binding and open-complex formation at the transcription start site
C. The stability of the mature mRNA in the cytoplasm
D. The splicing of introns from the primary transcript

55 Ribosomal RNA and other functional RNAs fold into complex tertiary structures. Which non-canonical interaction is especially important for stabilizing RNA tertiary architecture?

The Biophysics of RNA Hard
A. The A-minor motif, in which adenosine inserts into the minor groove of a distant helix
B. Peptide bonds linking distant nucleotides
C. Exclusively Watson-Crick base pairing with no other contacts
D. The formation of B-form double helices identical to genomic DNA

56 Why can RNA, unlike DNA, act as a catalyst (ribozyme) in reactions such as self-splicing and peptide bond formation?

The Biophysics of RNA Hard
A. It is always single-stranded and therefore cannot form any structure that hinders catalysis
B. It contains uracil, which is inherently catalytic unlike thymine
C. Its 2'-OH group and ability to fold into diverse tertiary structures create catalytic active sites and enable specific chemistry
D. Its phosphodiester backbone is stronger than that of DNA, resisting hydrolysis

57 In transfer RNA (tRNA), the characteristic L-shaped tertiary structure arises from the coaxial stacking of its arms. Which pairing of stems forms the two coaxial helices of the L-shape?

The Biophysics of RNA Hard
A. Acceptor stem stacks with the anticodon arm, and the D arm stacks with the TC arm
B. The anticodon arm stacks with the TC arm forming one helix only
C. Acceptor stem stacks with the TC arm, and the D arm stacks with the anticodon arm
D. All four arms stack into a single continuous straight helix

58 Magnesium ions () are critical for RNA folding. What is their primary biophysical role?

The Biophysics of RNA Hard
A. They break the phosphodiester backbone to allow flexibility
B. They screen and neutralize the negatively charged phosphate backbone, allowing close packing of helices in the folded state
C. They replace nitrogenous bases to stabilize base stacking
D. They form covalent bonds with the ribose sugars to lock the structure

59 Consider an RNA hairpin whose stem melts with a two-state transition. If the melting temperature is defined as the temperature where half the population is folded, which change would most likely raise ?

The Biophysics of RNA Hard
A. Reducing the ionic strength of the solution to near zero
B. Shortening the stem to only two base pairs
C. Introducing several mismatched base pairs into the stem
D. Increasing the G-C content of the stem, which provides more hydrogen bonds and stronger base stacking

60 The Watson-Crick base pair G≡C is more thermally stable than A=T. Beyond the extra hydrogen bond, which additional factor contributes significantly to this stability?

Biomolecules Hard
A. G-C pairs form covalent bonds absent in A-T pairs
B. Stronger base-stacking interactions associated with G-C rich regions contribute substantially to duplex stability
C. G-C pairs increase the negative charge on the backbone
D. A-T pairs contain three hydrogen bonds while G-C pairs contain only two