Unit 3: Structure of Nucleic Acids; DNA Packaging and Replication - Practice Quiz

BTY426 — Cell And Molecular Biology 60 Questions
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1 Which form of DNA is the most common and biologically predominant right-handed double helix under physiological conditions?

Types and structure of DNA Easy
A. A-DNA
B. Z-DNA
C. C-DNA
D. B-DNA

2 In the DNA double helix, adenine (A) pairs with thymine (T) through how many hydrogen bonds?

Types and structure of DNA Easy
A. Four hydrogen bonds
B. Two hydrogen bonds
C. Three hydrogen bonds
D. One hydrogen bond

3 Which unusual form of DNA has a left-handed helical structure with a zig-zag sugar-phosphate backbone?

Types and structure of DNA Easy
A. H-DNA
B. A-DNA
C. B-DNA
D. Z-DNA

4 According to Chargaff's rule, in double-stranded DNA the amount of adenine equals the amount of which base?

Types and structure of DNA Easy
A. Cytosine
B. Guanine
C. Thymine
D. Uracil

5 The temperature at which half of the DNA molecules become single-stranded during denaturation is called the:

denaturation and re-naturation of DNA Easy
A. Boiling point
B. Annealing point
C. Melting temperature ()
D. Freezing point

6 DNA with a higher G–C content will have a melting temperature () that is:

denaturation and re-naturation of DNA Easy
A. Higher
B. Zero
C. Lower
D. Unchanged

7 The process by which separated complementary DNA strands come back together to reform a double helix is called:

denaturation and re-naturation of DNA Easy
A. Denaturation
B. Renaturation
C. Transcription
D. Replication

8 Which enzyme is responsible for relieving supercoiling tension in DNA?

supercoiling of DNA Easy
A. Topoisomerase
B. Ligase
C. Primase
D. DNA polymerase

9 When DNA is coiled in the direction opposite to that of the right-handed helix, it is said to be:

supercoiling of DNA Easy
A. Linear
B. Positively supercoiled
C. Relaxed
D. Negatively supercoiled

10 Which type of RNA carries amino acids to the ribosome during protein synthesis?

types and structures of RNA Easy
A. rRNA
B. snRNA
C. tRNA
D. mRNA

11 In RNA, which nitrogenous base replaces thymine found in DNA?

types and structures of RNA Easy
A. Uracil
B. Cytosine
C. Adenine
D. Guanine

12 Which type of RNA is the most abundant in the cell and forms a structural part of ribosomes?

types and structures of RNA Easy
A. rRNA
B. tRNA
C. miRNA
D. mRNA

13 Histone proteins are rich in which type of amino acids, giving them a positive charge?

Hierarchical Packaging of DNA: histone proteins Easy
A. Sulfur-containing amino acids
B. Acidic amino acids
C. Aromatic amino acids
D. Basic amino acids

14 Which histone protein acts as a linker histone rather than a core histone?

Hierarchical Packaging of DNA: histone proteins Easy
A. H4
B. H2A
C. H1
D. H3

15 The core of a nucleosome is composed of a histone octamer containing how many histone molecules?

the nucleosome assembly Easy
A. Six
B. Ten
C. Four
D. Eight

16 Which enzyme unwinds the DNA double helix at the replication fork?

Enzymes and proteins in DNA replication Easy
A. Helicase
B. Primase
C. Topoisomerase
D. Ligase

17 Which enzyme joins Okazaki fragments together by forming phosphodiester bonds?

Enzymes and proteins in DNA replication Easy
A. Primase
B. Helicase
C. DNA ligase
D. DNA polymerase

18 Which DNA polymerase is the main enzyme responsible for synthesizing new DNA strands in prokaryotes like E. coli?

DNA replication in prokaryotes Easy
A. DNA polymerase IV
B. DNA polymerase II
C. DNA polymerase III
D. DNA polymerase I

19 In eukaryotic DNA replication, the ends of linear chromosomes are maintained by which enzyme?

DNA replication in eukaryotes Easy
A. Telomerase
B. Helicase
C. Ligase
D. Primase

20 The proofreading ability of DNA polymerase that removes incorrectly added nucleotides is due to its:

Fidelity of DNA replication Easy
A. polymerase activity
B. exonuclease activity
C. exonuclease activity
D. Helicase activity

21 A DNA sample is found to be a left-handed double helix with a zig-zag sugar-phosphate backbone and about 12 base pairs per turn. Which conformation does this sample most likely represent?

Types and structure of DNA Medium
A. B-DNA
B. Z-DNA
C. A-DNA
D. C-DNA

22 In a segment of double-stranded DNA, adenine constitutes 30% of the total bases. Applying Chargaff's rules, what is the percentage of guanine?

Types and structure of DNA Medium
A. 20%
B. 30%
C. 40%
D. 70%

23 Two DNA samples of equal length are heated. Sample X has a higher melting temperature () than sample Y. What can be concluded about sample X?

denaturation and re-naturation of DNA Medium
A. It is single-stranded
B. It has a higher G-C content
C. It has more mismatched bases
D. It has a higher A-T content

24 During DNA renaturation experiments, the rate of reassociation is often expressed using the value. A DNA with highly repetitive sequences will show which behaviour?

denaturation and re-naturation of DNA Medium
A. A constant absorbance regardless of
B. Reassociation at low values
C. No reassociation at all
D. Reassociation at very high values

25 A circular DNA molecule has a linking number lower than that of its relaxed form. This molecule is best described as:

supercoiling of DNA Medium
A. Positively supercoiled
B. Denatured
C. Relaxed
D. Negatively supercoiled

26 Which enzyme relieves positive supercoils that build up ahead of a replication fork by introducing negative supercoils in bacteria?

supercoiling of DNA Medium
A. Helicase
B. Topoisomerase I
C. Primase
D. DNA gyrase (topoisomerase II)

27 A researcher isolates an RNA molecule containing an anticodon loop, a T\u03a8C loop, and a D-loop arranged in a cloverleaf secondary structure. Which type of RNA is this?

types and structures of RNA Medium
A. Transfer RNA (tRNA)
B. Ribosomal RNA (rRNA)
C. Small nuclear RNA (snRNA)
D. Messenger RNA (mRNA)

28 In eukaryotic cells, which RNA type is the most abundant by mass and forms the catalytic core of the ribosome?

types and structures of RNA Medium
A. Transfer RNA (tRNA)
B. MicroRNA (miRNA)
C. Ribosomal RNA (rRNA)
D. Messenger RNA (mRNA)

29 Which property of histone proteins allows them to bind tightly to DNA?

Hierarchical Packaging of DNA: histone proteins Medium
A. An abundance of phosphorylated serine residues
B. A high content of negatively charged aspartate residues
C. The presence of many hydrophobic aromatic residues
D. A high content of positively charged lysine and arginine residues

30 Which histone is NOT part of the nucleosome core octamer but instead binds to linker DNA?

Hierarchical Packaging of DNA: histone proteins Medium
A. Histone H1
B. Histone H4
C. Histone H2A
D. Histone H3

31 Approximately how many base pairs of DNA are wrapped around a single histone octamer core to form the nucleosome core particle?

the nucleosome assembly Medium
A. 10 bp
B. 1000 bp
C. 147 bp
D. 200 bp

32 The 'beads-on-a-string' appearance of chromatin under the electron microscope corresponds to which level of packaging?

the nucleosome assembly Medium
A. Naked double-helical DNA
B. The 30 nm solenoid fibre
C. The 10 nm fibre of nucleosomes
D. The metaphase chromosome

33 Why is a primer required for DNA polymerase to begin synthesizing a new strand?

Enzymes and proteins in DNA replication Medium
A. The primer supplies energy for polymerization
B. The primer stabilizes the replication origin
C. DNA polymerase can only add nucleotides to an existing free 3'-OH group
D. DNA polymerase can only add nucleotides to a free 5'-phosphate group

34 What is the primary role of single-strand binding (SSB) proteins during replication?

Enzymes and proteins in DNA replication Medium
A. Unwinding the parental duplex
B. Joining Okazaki fragments together
C. Synthesizing RNA primers
D. Preventing separated strands from reannealing

35 In E. coli, which enzyme removes the RNA primers and replaces them with DNA during replication?

DNA replication in prokaryotes Medium
A. DNA ligase
B. DNA polymerase III
C. Primase
D. DNA polymerase I

36 During replication of the leading and lagging strands, the lagging strand is synthesized discontinuously because:

DNA replication in prokaryotes Medium
A. The lagging strand template is more tightly supercoiled
B. Helicase moves in the direction on it
C. DNA synthesis can only proceed in the direction
D. Primase acts only on the lagging strand

37 Which feature distinguishes eukaryotic chromosomal replication from prokaryotic replication?

DNA replication in eukaryotes Medium
A. Eukaryotic replication does not require primers
B. Eukaryotes use multiple origins of replication per chromosome
C. Eukaryotes do not use Okazaki fragments
D. Eukaryotes use only a single origin per chromosome

38 The enzyme telomerase is required in eukaryotes to solve which specific problem of linear chromosome replication?

DNA replication in eukaryotes Medium
A. Failure of helicase to unwind telomeres
B. Loss of DNA at the 3' ends due to primer removal
C. Excessive supercoiling at replication origins
D. Inability of ligase to seal terminal nicks

39 Which activity of DNA polymerase III immediately corrects a mismatched nucleotide during synthesis?

Fidelity of DNA replication Medium
A. exonuclease activity
B. Mismatch repair by MutS
C. exonuclease proofreading
D. Nucleotide excision repair

40 In rolling circle replication, what is the initial event that starts the process on the circular template?

Rolling circle replication Medium
A. Primase synthesizes an RNA primer on the plus strand
B. Helicase fully separates both circular strands
C. Two replication forks form at a single origin
D. An endonuclease nicks one strand to create a free 3'-OH

41 A DNA sample is analyzed and found to have a helical repeat of 12 base pairs per turn, a left-handed helix, and a zig-zag sugar-phosphate backbone. Under high salt conditions, alternating purine-pyrimidine sequences favor this form. Which conformation and driving factor combination is correct?

Types and structure of DNA Hard
A. C-DNA, stabilized by intermediate humidity conditions
B. Z-DNA, stabilized by high ionic strength reducing backbone charge repulsion
C. A-DNA, stabilized by dehydration of the double helix
D. B-DNA, stabilized by physiological hydration

42 Two DNA samples have identical length but sample X melts at and sample Y at under identical buffer conditions. What can be reliably concluded about sample Y relative to X?

denaturation and re-naturation of DNA Hard
A. Sample Y has a higher A+T content
B. Sample Y contains more single-strand breaks
C. Sample Y is shorter in effective length
D. Sample Y has a higher G+C content

43 In a (renaturation kinetics) experiment on a eukaryotic genome, three distinct components reassociate at different values. The fraction reassociating at the lowest most likely represents:

denaturation and re-naturation of DNA Hard
A. Unique single-copy genes
B. Moderately repetitive gene families
C. Highly repetitive sequences
D. Denatured mitochondrial DNA only

44 A relaxed circular DNA has . After the action of an enzyme, becomes 490 while the molecule is kept under conditions favoring -form. Assuming no change in twist (), what is the writhe and the type of supercoiling?

supercoiling of DNA Hard
A. , positively supercoiled
B. , relaxed
C. , negatively supercoiled
D. , negatively supercoiled

45 Which statement correctly distinguishes the ATP requirements and topological outcomes of bacterial topoisomerase I and DNA gyrase (topoisomerase II)?

supercoiling of DNA Hard
A. Topo I relaxes negative supercoils without ATP; gyrase introduces negative supercoils using ATP
B. Topo I introduces positive supercoils using ATP; gyrase relaxes them without ATP
C. Both require ATP and both introduce negative supercoils
D. Topo I requires ATP to relax; gyrase acts without ATP to relax

46 A tRNA molecule loses its ability to be recognized by its cognate aminoacyl-tRNA synthetase after a point mutation, yet its cloverleaf secondary structure and anticodon are unchanged. The most likely explanation is a mutation affecting:

types and structures of RNA Hard
A. An identity element such as the acceptor stem discriminator base
B. The 5' phosphate group of the tRNA
C. The loop pseudouridine modification
D. The variable loop length only

47 Ribosomal RNA is often described as the catalytic component of the ribosome. Which observation most directly supports rRNA (not ribosomal protein) as the peptidyl transferase catalyst?

types and structures of RNA Hard
A. Ribosomal proteins cluster at the peptidyl transferase center
B. The catalytic activity requires the small subunit proteins exclusively
C. Removal of all rRNA still permits peptide bond formation
D. The peptidyl transferase center is composed entirely of 23S rRNA with no protein side chains at the active site

48 Histone H1 differs functionally from core histones in chromatin organization. Which statement best captures its distinct structural role?

Hierarchical Packaging of DNA: histone proteins Hard
A. H1 forms the histone octamer core around which DNA wraps
B. H1 replaces H2A-H2B dimers during transcription activation
C. H1 is required for the initial deposition of the (H3-H4) tetramer
D. H1 binds linker DNA at the nucleosome dyad, promoting formation of the 30-nm fiber

49 During replication-coupled nucleosome assembly, histones are deposited in a defined order onto newly synthesized DNA. What is the correct sequence and its functional rationale?

the nucleosome assembly Hard
A. H1 deposited first to organize linker DNA
B. All four core histones deposited simultaneously as a preformed octamer
C. (H3-H4) tetramer deposited first, followed by two H2A-H2B dimers
D. Two H2A-H2B dimers deposited first, then the (H3-H4) tetramer

50 In E. coli, a temperature-sensitive mutation inactivates the (tau) subunit of the DNA polymerase III holoenzyme at the restrictive temperature. What is the most direct consequence?

Enzymes and proteins in DNA replication Hard
A. Failure of proofreading 3'→5' exonuclease activity
B. Inability to load the sliding clamp onto DNA
C. Loss of primase recruitment to the primosome
D. Loss of dimerization coupling the leading- and lagging-strand polymerases at the fork

51 A researcher observes that in the absence of a particular protein, Okazaki fragments accumulate as short primed segments that are never joined, and RNA primers persist. Which combined defect best explains this?

Enzymes and proteins in DNA replication Hard
A. Loss of the clamp and clamp loader
B. Loss of single-strand binding protein and topoisomerase
C. Loss of DNA polymerase I and DNA ligase activities
D. Loss of primase and helicase activities

52 In the E. coli origin oriC, replication initiation is tightly regulated. Which mechanism prevents immediate re-initiation at newly replicated origins?

DNA replication in prokaryotes Hard
A. Physical removal of the DnaB helicase from the cell
B. Permanent hypermethylation of both strands by Dam methylase
C. Sequestration of hemimethylated oriC by SeqA blocking Dam remethylation
D. Complete degradation of DnaA after each initiation event

53 Bidirectional replication from a single origin on a circular bacterial chromosome terminates in a specific region. What is the role of the Tus-Ter system?

DNA replication in prokaryotes Hard
A. Tus binds Ter sites to accelerate fork progression through the terminus
B. Tus recruits primase to reinitiate lagging-strand synthesis at Ter
C. Tus binds Ter sites to arrest replication forks in a polar (direction-dependent) manner
D. Tus removes supercoils generated ahead of the fork at Ter

54 Eukaryotic origins fire only once per cell cycle. Which regulatory logic involving the pre-replication complex (pre-RC) enforces this?

DNA replication in eukaryotes Hard
A. Licensing (MCM loading) occurs only in G1 when CDK is low; high S-phase CDK blocks re-licensing
B. ORC is degraded after G1 and resynthesized only in mitosis
C. MCM helicase is loaded continuously throughout the cell cycle
D. Licensing occurs in S phase when CDK is high, then CDK falls to allow firing

55 The end-replication problem in linear eukaryotic chromosomes arises specifically because:

DNA replication in eukaryotes Hard
A. Topoisomerase cannot relax supercoils at the chromosome ends
B. Removal of the terminal RNA primer on the lagging strand leaves a gap that cannot be filled
C. DNA ligase cannot seal the final nick at internal Okazaki fragments
D. Leading-strand synthesis cannot reach the extreme 3' end of the template

56 Overall replication fidelity in E. coli approaches 1 error per – bp. If base selection gives , proofreading adds , what approximate contribution must mismatch repair provide to reach an overall error rate of ?

Fidelity of DNA replication Hard
A. to
B. (no contribution)
C.
D.

57 In E. coli methyl-directed mismatch repair, how does the system correctly identify and excise the newly synthesized (error-containing) strand rather than the template?

Fidelity of DNA replication Hard
A. The leading strand is always designated for repair
B. The strand containing 5-methylcytosine is targeted for excision
C. The transiently unmethylated (hemimethylated) daughter strand at GATC sites is recognized as newer and targeted
D. The strand with more G+C content is always excised

58 During rolling circle replication (e.g., of X174 or F plasmid transfer), what event initiates the process and generates the free 3'-OH used for leading-strand extension?

Rolling circle replication Hard
A. Topoisomerase cleaves both strands simultaneously to open the circle
B. Primase synthesizes an RNA primer at a fixed internal origin
C. An initiator protein nicks one strand, becoming covalently attached to the 5' end and freeing a 3'-OH
D. Helicase unwinds both strands to create a bidirectional fork

59 A rolling circle intermediate produces a single-stranded linear tail that is many genome-lengths long (a concatemer). What downstream processing is required to yield unit-length genomes, as seen in some bacteriophages?

Rolling circle replication Hard
A. Random endonucleolytic fragmentation into any length
B. Immediate ligation of the tail into a single giant circle
C. Site-specific cleavage of the concatemer at defined sequences followed by circularization or packaging
D. Reverse transcription of the tail into DNA

60 Chargaff's rules state and for double-stranded DNA. In a single strand of a given DNA, and . What are the percentages of T and C in the complementary strand?

Types and structure of DNA Hard
A. and
B. and
C. and
D. and