Unit 5: Mitochondria and Chloroplasts - Practice Quiz

BTS118 — Cell Biology 60 Questions
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1 Which organelle is commonly called the powerhouse of the cell?

Organization and function of mitochondria Easy
A. Mitochondrion
B. Ribosome
C. Lysosome
D. Nucleus

2 What is the name of the highly folded inner membrane of a mitochondrion?

Organization and function of mitochondria Easy
A. Matrix
B. Stroma
C. Grana
D. Cristae

3 Which mitochondrial compartment contains enzymes for many stages of cellular respiration?

Organization and function of mitochondria Easy
A. Matrix
B. Cytosol
C. Outer membrane
D. Intermembrane space

4 Where is the mitochondrial electron transport chain mainly located?

Organization and function of mitochondria Easy
A. Nucleoid
B. Matrix
C. Outer membrane
D. Inner membrane

5 How is the mitochondrial genome usually described in animal cells?

Mitochondrial genome Easy
A. Large and linear
B. Single-stranded and segmented
C. Absent from the organelle
D. Small and circular

6 Mitochondrial DNA is located primarily in which organelle?

Mitochondrial genome Easy
A. Endoplasmic reticulum
B. Golgi apparatus
C. Nucleus
D. Mitochondrion

7 Which type of molecule is encoded by some mitochondrial genes?

Mitochondrial genome Easy
A. Cellulose
B. Glycogen
C. Cholesterol
D. Ribosomal RNA

8 Most mitochondrial proteins are encoded by genes located in the:

Mitochondrial genome Easy
A. Lysosomal genome
B. Chloroplast genome
C. Nuclear genome
D. Mitochondrial genome

9 What is a common feature of a mitochondrial targeting sequence?

Import of mitochondrial inner membrane proteins Easy
A. It prevents protein synthesis
B. It directs proteins to mitochondria
C. It sends proteins to lysosomes
D. It anchors proteins to DNA

10 Which protein complex first recognizes many nuclear-encoded mitochondrial proteins at the outer membrane?

Import of mitochondrial inner membrane proteins Easy
A. Photosystem I
B. TOM complex
C. TIM complex
D. ATP synthase

11 Which complex helps move many precursor proteins across the mitochondrial inner membrane?

Import of mitochondrial inner membrane proteins Easy
A. TOM complex
B. MHC complex
C. TIM complex
D. COP complex

12 Many mitochondrial inner membrane proteins contain which type of sequence that can become a membrane anchor?

Import of mitochondrial inner membrane proteins Easy
A. Phosphate group
B. DNA repeat
C. Hydrophobic segment
D. Sugar chain

13 A mitochondrial targeting sequence that is cleaved after import is usually removed by a:

Protein sorting to different mitochondrial compartments Easy
A. Polymerase
B. Ligase
C. Protease
D. Helicase

14 A protein with a signal that directs it to the mitochondrial matrix will cross which membrane?

Protein sorting to different mitochondrial compartments Easy
A. Chloroplast envelope only
B. Plasma membrane
C. Nuclear envelope only
D. Inner membrane

15 Where are many mitochondrial outer membrane proteins inserted?

Protein sorting to different mitochondrial compartments Easy
A. Nucleolus
B. Intermembrane space
C. Matrix
D. Outer membrane

16 Which process takes place in chloroplasts?

Structure and function of chloroplasts Easy
A. Cell division only
B. Photosynthesis
C. Protein digestion only
D. DNA replication only

17 What are stacks of thylakoids called?

Structure and function of chloroplasts Easy
A. Cisternae
B. Cristae
C. Grana
D. Matrix

18 Which chloroplast compartment surrounds the thylakoid stacks?

Structure and function of chloroplasts Easy
A. Nucleoplasm
B. Intermembrane space
C. Stroma
D. Matrix

19 The chloroplast genome is usually found as which type of DNA molecule?

Chloroplast genome Easy
A. RNA-only genome
B. Single linear chromosome only
C. Protein-only material
D. Circular DNA

20 Most proteins found in chloroplasts are encoded by genes in the:

Chloroplast genome Easy
A. Ribosomal genome
B. Mitochondrial genome
C. Nuclear genome
D. Chloroplast genome

21 A mutation makes the inner mitochondrial membrane freely permeable to protons. Which process would be most directly impaired?

Organization and function of mitochondria Medium
A. Protein synthesis on cytosolic ribosomes
B. DNA replication in the nucleus
C. Glycolysis in the cytosol
D. ATP production by oxidative phosphorylation

22 Why does the mitochondrial inner membrane contain many folds called cristae?

Organization and function of mitochondria Medium
A. They allow mitochondrial DNA to bind more efficiently
B. They increase the membrane area for respiratory complexes
C. They prevent enzymes from entering the matrix
D. They provide attachment sites for cytosolic ribosomes

23 If a cell suddenly lacks oxygen, which mitochondrial event is most directly blocked first?

Organization and function of mitochondria Medium
A. Conversion of pyruvate to acetyl-CoA
B. Transfer of electrons to the terminal acceptor
C. Import of proteins through the outer membrane
D. Replication of mitochondrial DNA

24 A mitochondrial disorder is transmitted from an affected mother to all of her children, but only her daughters pass it to the next generation. Which inheritance pattern best explains this result?

Mitochondrial genome Medium
A. Maternal inheritance through the egg cytoplasm
B. X-linked recessive inheritance
C. Autosomal dominant inheritance
D. Paternal inheritance through sperm mitochondria

25 Why can mitochondrial mutations produce different disease severity among cells in the same person?

Mitochondrial genome Medium
A. Cells may contain different proportions of mutant and normal genomes
B. Mitochondrial proteins are translated only in the nucleus
C. Each cell receives mitochondrial DNA exclusively from the father
D. Mitochondrial genes are expressed only in dividing cells

26 A mitochondrial gene encodes a protein that is an essential subunit of an electron transport complex. Which result is most likely if that gene is deleted?

Mitochondrial genome Medium
A. Increased chloroplast carbon fixation
B. Failure of nuclear DNA packaging
C. Reduced respiratory-chain activity
D. Complete loss of cytosolic glycolysis

27 A newly synthesized mitochondrial inner membrane protein has an N-terminal targeting sequence and a hydrophobic stop-transfer sequence. What is its likely import pathway?

Import of mitochondrial inner membrane proteins Medium
A. Nuclear pore followed by insertion into the mitochondrial matrix
B. TOM complex followed by direct insertion into the outer membrane
C. TOM complex followed by TIM23-mediated insertion
D. Sec pathway followed by insertion into the thylakoid membrane

28 A mutation prevents mitochondrial matrix ATP from powering import motors, but the inner membrane remains intact. Which class of protein import would be most affected?

Import of mitochondrial inner membrane proteins Medium
A. Diffusion of small ions through outer-membrane pores
B. Transcription of genes inside the nucleus
C. Import of proteins requiring matrix-side pulling
D. Synthesis of proteins by cytosolic ribosomes

29 A precursor protein lacks a cleavable N-terminal targeting sequence but contains multiple internal hydrophobic segments. Which pathway is most appropriate for its insertion into the mitochondrial inner membrane?

Import of mitochondrial inner membrane proteins Medium
A. Chloroplast TOC complex followed by the TIC complex
B. TOM complex followed by the TIM22 carrier pathway
C. Nuclear import followed by vesicular transport
D. TIM23 pathway followed by release into the matrix

30 A mitochondrial precursor contains an N-terminal targeting sequence that is removed after import and then remains soluble in the matrix. Which feature most likely directs this final localization?

Protein sorting to different mitochondrial compartments Medium
A. A cleavable amphipathic targeting sequence
B. A permanent transmembrane anchor
C. A cytosolic nuclear localization signal
D. A chloroplast transit peptide

31 A protein is initially imported into the mitochondrial matrix but is later found in the intermembrane space. Which mechanism could produce this localization?

Protein sorting to different mitochondrial compartments Medium
A. Insertion into the outer membrane by cytosolic vesicles
B. Transport through nuclear pores after mitochondrial translation
C. Direct diffusion through the inner membrane lipid bilayer
D. Import followed by proteolytic release from an inner-membrane precursor

32 A mitochondrial outer-membrane protein has a hydrophobic segment near its extreme C terminus. Which targeting feature is most consistent with its localization?

Protein sorting to different mitochondrial compartments Medium
A. A transit peptide directing it to the chloroplast stroma
B. A tail-anchor signal inserted after TOM-independent targeting
C. A cleavable N-terminal signal for matrix entry
D. A nuclear localization signal directing it through nuclear pores

33 A chloroplast is treated with a chemical that prevents proton accumulation inside the thylakoid lumen. Which process would decline most directly?

Structure and function of chloroplasts Medium
A. Import of proteins through the outer envelope
B. Synthesis of fatty acids in the cytosol
C. ATP synthesis by the chloroplast ATP synthase
D. Replication of chloroplast DNA in the stroma

34 Why are grana connected by stroma lamellae in chloroplasts?

Structure and function of chloroplasts Medium
A. They connect chloroplasts directly to the nucleus
B. They prevent light from reaching photosystem II
C. They maintain membrane continuity between thylakoid regions
D. They separate chloroplast DNA from the ribosomes

35 If the enzyme that fixes carbon dioxide is inhibited while the light reactions remain functional, which immediate change is expected?

Structure and function of chloroplasts Medium
A. Direct blockage of proton movement through ATP synthase
B. Increased conversion of oxygen into carbon dioxide
C. Reduced sugar production despite continued electron transport
D. Complete loss of chlorophyll from the thylakoid membrane

36 A chloroplast gene is mutated in only some chloroplasts of a leaf cell. What could explain variable photosynthetic activity among cells derived from that tissue?

Chloroplast genome Medium
A. Translation of all chloroplast genes by nuclear ribosomes
B. Unequal distribution of mutant and normal chloroplast genomes
C. Exclusive inheritance of chloroplast genes from pollen
D. Complete absence of chloroplast division after cell formation

37 Which observation most strongly supports the endosymbiotic origin of chloroplasts?

Chloroplast genome Medium
A. Chloroplasts contain only proteins encoded by nuclear DNA
B. Chloroplasts replicate only when the nucleus undergoes mitosis
C. Chloroplasts contain circular DNA and bacterial-type ribosomes
D. Chloroplasts lack membranes surrounding their internal compartments

38 A nuclear-encoded chloroplast stromal protein is synthesized in the cytosol with an N-terminal transit peptide. Which route does it most likely follow?

Import and sorting of chloroplast proteins Medium
A. Sec complex followed directly by the nuclear pore
B. TOC complex followed by TIC complex
C. TOM complex followed by TIM23 complex
D. Vesicle budding from the endoplasmic reticulum to the thylakoid

39 A chloroplast protein contains both a transit peptide for stromal entry and a second signal that directs it to the thylakoid membrane. What does this arrangement indicate?

Import and sorting of chloroplast proteins Medium
A. It remains in the cytosol because two signals are incompatible
B. It is imported into the stroma before thylakoid sorting
C. It is inserted into the mitochondrial inner membrane first
D. It enters the nucleus before being transported to the thylakoid

40 A nuclear-encoded chloroplast protein lacks its transit peptide but is otherwise functional. Where would it most likely accumulate?

Import and sorting of chloroplast proteins Medium
A. In the chloroplast stroma
B. In the chloroplast thylakoid lumen
C. In the cytosol
D. In the mitochondrial matrix

41 A mutation selectively reduces the proton conductance of the inner mitochondrial membrane without directly affecting electron transport. Which immediate change is most likely in intact mitochondria supplied with oxygen and respiratory substrates?

Organization and function of mitochondria Hard
A. The proton-motive force and oxygen consumption both rise
B. The proton-motive force rises while oxygen consumption falls
C. The proton-motive force falls while oxygen consumption rises
D. The proton-motive force and oxygen consumption both fall

42 Why does the highly folded inner mitochondrial membrane support greater oxidative phosphorylation capacity than an equally sized smooth membrane?

Organization and function of mitochondria Hard
A. It increases matrix volume for glycolytic enzymes
B. It eliminates the need for proton movement across the membrane
C. It provides more surface area for respiratory complexes and ATP synthase
D. It permits direct diffusion of ATP into the cytosol

43 A respiratory-chain inhibitor is added to cells, and ATP production decreases despite normal substrate uptake and an intact ATP synthase catalytic domain. Which observation best distinguishes inhibition of electron transport from direct inhibition of ATP synthase?

Organization and function of mitochondria Hard
A. The intermembrane space becomes more acidic and oxygen consumption increases
B. The matrix becomes more acidic and oxygen consumption increases
C. The matrix becomes less acidic and oxygen consumption decreases
D. The intermembrane space becomes less acidic and oxygen consumption decreases

44 A pathogenic mitochondrial DNA mutation is heteroplasmic. A tissue crosses a functional threshold only after the mutant genome fraction becomes high. Which inheritance pattern is most consistent with this mechanism?

Mitochondrial genome Hard
A. Identical disease severity in all offspring
B. Mendelian segregation of the mutation from both parents
C. Paternal transmission with predictable severity among sons
D. Maternal transmission with variable severity among siblings

45 A mitochondrial gene is experimentally relocated to the nuclear genome. Which additional change is generally required for the encoded protein to remain functional in mitochondria?

Mitochondrial genome Hard
A. Replacement of every hydrophobic residue with a charged residue
B. Insertion of a chloroplast transit peptide and mitochondrial stop codon
C. Addition of a mitochondrial targeting sequence and compatible expression control
D. Addition of a nuclear export signal and removal of all introns

46 Which feature most directly explains why mitochondrial DNA mutations can produce a mosaic pattern of respiratory deficiency within a single tissue?

Mitochondrial genome Hard
A. Each mitochondrion contains exactly one genome copy
B. Different cells inherit and amplify different mixtures of mitochondrial genomes
C. Mitochondrial DNA is always inherited from both parents
D. Mitochondrial genomes are replicated only during mitosis

47 A nuclear-encoded inner-membrane protein has an N-terminal presequence followed by a hydrophobic stop-transfer segment. A mutation blocks the TIM23 lateral-release mechanism but leaves translocation through the TOM complex intact. Where will the protein accumulate?

Import of mitochondrial inner membrane proteins Hard
A. The intermembrane space as a soluble mature protein
B. The mitochondrial matrix as a fully translocated protein
C. The inner-membrane translocase in a nonreleased intermediate
D. The cytosolic surface of the outer membrane

48 A polytopic inner-membrane protein lacks a cleavable presequence but contains multiple internal targeting signals. Which import route is most likely?

Import of mitochondrial inner membrane proteins Hard
A. TOM followed by the TIM22 carrier pathway
B. TOM followed by matrix processing through TIM23
C. TOM followed by vesicular transport from the matrix
D. Direct passage through the inner membrane without TOM

49 A mitochondrial precursor with a cleavable presequence is synthesized in the presence of a protonophore that collapses the inner-membrane electrochemical gradient but does not damage the outer membrane. Which result is expected?

Import of mitochondrial inner membrane proteins Hard
A. Only mitochondrial DNA-encoded proteins fail to be synthesized
B. Import through TIM23 is impaired despite normal cytosolic synthesis
C. The precursor is inserted into the outer membrane by default
D. Import through TOM increases because the matrix is less negative

50 A protein contains an N-terminal matrix-targeting presequence followed by a hydrophobic segment that acts as an internal stop-transfer sequence. Which final location is most likely?

Protein sorting to different mitochondrial compartments Hard
A. The inner membrane with the downstream domain in the intermembrane space
B. The outer membrane with the presequence exposed to the cytosol
C. The intermembrane space as a completely unprocessed protein
D. The mitochondrial matrix in soluble form

51 A small intermembrane-space protein contains a bipartite targeting signal: an N-terminal mitochondrial presequence followed by a hydrophobic segment that is cleaved within the intermembrane space. Which pathway best explains its localization?

Protein sorting to different mitochondrial compartments Hard
A. Outer-membrane insertion followed by proteasomal release
B. Direct import through TIM22 without outer-membrane translocation
C. Matrix import through TIM23 followed by reverse diffusion
D. TOM entry followed by stop-transfer and inner-membrane cleavage

52 A tail-anchored mitochondrial outer-membrane protein has a C-terminal transmembrane helix and no cleavable presequence. Which targeting logic is most appropriate?

Protein sorting to different mitochondrial compartments Hard
A. Insertion into the inner membrane through the TIM23 stop-transfer route
B. Import into the intermembrane space followed by spontaneous membrane synthesis
C. Post-translational targeting of the tail anchor to the outer membrane
D. Presequence-dependent import through TOM and complete matrix translocation

53 A mutation prevents cleavage of a matrix-targeting presequence but does not block translocation. What is the most direct consequence for the imported protein?

Protein sorting to different mitochondrial compartments Hard
A. It becomes encoded by mitochondrial DNA
B. It reaches the matrix but retains an N-terminal targeting extension
C. It remains permanently in the cytosol
D. It is redirected automatically to the outer membrane

54 A chloroplast is illuminated while stromal ADP and phosphate are abundant, but a mutation prevents proton transfer from the thylakoid lumen to the stroma through ATP synthase. Which immediate combination is expected?

Structure and function of chloroplasts Hard
A. Increased lumen acidification and increased carbon fixation
B. Reduced lumen acidification and reduced NADPH formation
C. Reduced lumen acidification and increased ATP production
D. Increased lumen acidification and reduced ATP production

55 Why does the stacking of thylakoid membranes into grana require spatial organization of photosynthetic complexes rather than simply increasing membrane area?

Structure and function of chloroplasts Hard
A. Stacking converts stromal ATP directly into light energy
B. Grana eliminate the need for chlorophyll molecules
C. Grana contain only enzymes of the Calvin cycle
D. Different photosystems and electron carriers must be distributed to optimize excitation and electron flow

56 A herbicide blocks electron transfer from photosystem II but leaves photosystem I and ATP synthase structurally intact. Which change is most directly expected under illumination?

Structure and function of chloroplasts Hard
A. Proton accumulation in the thylakoid lumen becomes unlimited
B. NADPH production from photosystem I necessarily increases
C. Carbon fixation becomes independent of reducing power
D. Water oxidation and oxygen evolution decrease

57 A chloroplast genome mutation affects a photosynthetic subunit in only a subset of chloroplast DNA copies. Why can daughter cells differ markedly in photosynthetic competence after cell division?

Chloroplast genome Hard
A. Chloroplast proteins are inherited only through the paternal gamete
B. Chloroplast genomes segregate randomly among proliferating organelles
C. All chloroplast DNA copies are forced into one daughter cell
D. Every chloroplast genome is replaced by nuclear DNA during division

58 A chloroplast gene is transferred to the nucleus during evolution. Which change most directly permits its product to function inside the chloroplast?

Chloroplast genome Hard
A. Insertion of a second chloroplast genome into the nuclear chromosome
B. Acquisition of a chloroplast transit peptide and nuclear-compatible expression
C. Replacement of the transit peptide with a mitochondrial targeting sequence
D. Deletion of all amino acids that could interact with stromal proteins

59 A nuclear-encoded thylakoid protein contains an N-terminal chloroplast transit peptide followed by a lumen-targeting signal peptide. Which sequence of events is most likely?

Import and sorting of chloroplast proteins Hard
A. Import into the nucleus, followed by vesicular delivery to the lumen
B. Direct insertion into the thylakoid from the cytosol without envelope passage
C. Import through TOC and TIC, followed by thylakoid translocation
D. Entry through TOM and TIM23, followed by transfer to the thylakoid

60 A chloroplast inner-envelope protein has an N-terminal transit peptide and a hydrophobic stop-transfer segment. If the stop-transfer segment is experimentally removed, what is the most likely consequence?

Import and sorting of chloroplast proteins Hard
A. The protein is redirected to the mitochondrial intermembrane space
B. The transit peptide becomes a thylakoid lumen signal automatically
C. The protein is more likely to continue into the stroma
D. The protein remains bound to cytosolic ribosomes permanently