What this quiz covers
This quiz focuses on 2b Prions Viroids, giving you a quick way to practice the rules, question types, and explanations that matter most for MCAT Biological and Biochemical Foundations of Living Systems.
A comparative microbiology course lab examines two subviral particles. Sample X retains infectivity after RNase and DNase treatment but loses infectivity after strong denaturation that disrupts protein conformation. Sample Y loses infectivity after RNase but is unaffected by protease treatment and shows no detectable protein by mass spectrometry. In host tissue, X is associated with progressive neurodegeneration, while Y is associated with reduced plant vigor and altered gene expression.
Which statement best distinguishes replication/propagation between these subviral particles within cells?
MCAT Biological and Biochemical Foundations of Living Systems Quiz
Practice 2b Prions Viroids in MCAT Biological and Biochemical Foundations of Living Systems with focused quiz questions that help you check what you know, review explanations, and build confidence with test-style prompts.
This quiz focuses on 2b Prions Viroids, giving you a quick way to practice the rules, question types, and explanations that matter most for MCAT Biological and Biochemical Foundations of Living Systems.
Try each quiz question before looking at the correct answer. Use the explanations to review missed ideas, then come back to similar questions until the pattern feels familiar.
A comparative microbiology course lab examines two subviral particles. Sample X retains infectivity after RNase and DNase treatment but loses infectivity after strong denaturation that disrupts protein conformation. Sample Y loses infectivity after RNase but is unaffected by protease treatment and shows no detectable protein by mass spectrometry. In host tissue, X is associated with progressive neurodegeneration, while Y is associated with reduced plant vigor and altered gene expression.
Which statement best distinguishes replication/propagation between these subviral particles within cells?
Explanation: This question tests understanding of subviral particles: prions and viroids, and their role in cellular organization. Prions are misfolded proteins causing diseases by inducing misfolding in normal proteins, while viroids are small RNA particles affecting plants. In the vignette, sample X represents prions with protein-based infectivity, and Y represents viroids with RNA-based propagation. Choice C is correct because it distinguishes prion templating from viroid RNA copying and silencing. Choice B is incorrect because it misattributes replication mechanisms to the wrong particles. Ensure understanding of prion vs. viroid mechanisms; look for context clues in vignette such as treatment sensitivities.
A neurology clinic evaluates subviral particles in patients with progressive ataxia and cognitive decline. Brain biopsy homogenate shows seeding activity in a real-time conversion assay that increases with serial dilution, consistent with self-propagating conformational templating. Treatment with UV light (to damage nucleic acids) does not reduce seeding, but treatment with a chaotropic agent that unfolds proteins abolishes activity. Early pathology shows synaptic loss and gliosis without prominent inflammatory infiltrates.
Which outcome would be expected from prion accumulation in affected brain regions?
Explanation: This question tests understanding of subviral particles: prions and viroids, and their role in cellular organization. Prions are misfolded proteins causing diseases by inducing misfolding in normal proteins, while viroids are small RNA particles affecting plants. In the vignette, prions cause synaptic loss via protein templating in brain tissue. Choice A is correct because it captures prion aggregate impairment of neuronal function. Choice D is incorrect because it describes viroid RNA replication, not prions. Ensure understanding of prion vs. viroid mechanisms; look for context clues in vignette such as seeding assays.
A horticulture team detects a subviral particle in cucumber plants showing mosaic-like leaf patterns and reduced fruit set. The agent is a small, circular RNA with extensive intramolecular base pairing and no open reading frames. In infected plants, Dicer-like enzyme activity is elevated and a subset of host transcripts involved in cell wall expansion are decreased, while total rRNA levels are unchanged. Based on the vignette, which cellular consequence is most consistent with viroid infection?
Explanation: This question tests understanding of subviral particles: prions and viroids, and their role in cellular organization. Viroids are circular RNAs that replicate in plants and can trigger RNA silencing pathways affecting host gene expression. The vignette describes a circular RNA with no coding capacity, elevated Dicer activity, and decreased cell wall expansion transcripts. Choice B is correct because it accurately describes how viroids produce small RNAs that guide sequence-specific suppression of host mRNAs, altering cellular organization. Choice A describes prion mechanisms inappropriate for RNA agents. Choice C incorrectly suggests chromosomal integration. When analyzing viroid infections, look for RNA silencing mechanisms and altered host gene expression patterns without direct protein coding.
In a mouse neurodegeneration study, investigators inoculate two groups with brain homogenate from affected animals. Group 1 receives untreated homogenate; Group 2 receives the same homogenate after nuclease treatment that degrades DNA and RNA. Both groups develop progressive ataxia and neuronal vacuolization over weeks. In cultured neurons exposed to the homogenate, immunostaining shows intracellular aggregates of a host-encoded protein that becomes increasingly protease-resistant over time. Which outcome would be expected from prion accumulation in these neurons, based on the findings?
(Assume the infectious agent is a subviral particle.)
Explanation: This question tests understanding of subviral particles: prions and viroids, and their role in cellular organization. Prions are misfolded proteins that cause disease by inducing normal proteins to misfold, while viroids are small RNA particles affecting plants. In the vignette, the infectious agent survives nuclease treatment (ruling out nucleic acid-based agents) and causes protease-resistant protein aggregates, characteristic of prions. Choice A is correct because it accurately describes prion pathology: progressive protein misfolding and sequestration disrupts synaptic function without requiring nucleic acid replication. Choice B is incorrect because prions don't produce viral capsid proteins. Choice C incorrectly describes viroids (RNA-based plant pathogens) rather than prions. Choice D reverses causality - prion aggregates cause neurodegeneration, not vice versa.
A greenhouse outbreak causes stunting and leaf curling in tomato plants. Extracts from symptomatic plants remain infectious after protease treatment but lose infectivity after RNase treatment. No virion-like particles are observed, and sequencing reveals a small, circular, noncoding RNA. Infected leaf tissue shows increased accumulation of 21–24 nt small RNAs that map to the circular RNA sequence. Based on the vignette, what is most consistent with viroid replication in the infected plant cells?
(Assume the infectious agent is a subviral particle.)
Explanation: This question tests understanding of subviral particles: prions and viroids, and their role in cellular organization. Viroids are small circular RNA molecules that infect plants and replicate using host machinery, while prions are misfolded proteins affecting animals. In the vignette, the agent is sensitive to RNase but not protease, contains circular noncoding RNA, and generates small RNAs - all characteristic of viroids. Choice A is correct because viroids replicate through rolling-circle replication using host RNA polymerase, producing RNA intermediates that are processed into small interfering RNAs. Choice B is incorrect as viroids don't undergo reverse transcription. Choice C describes prion replication, not viroid replication. Choice D is wrong because viroids lack protein-coding capacity and don't form capsids.
Researchers compare two subviral agents in cell-free and cellular systems. Agent X retains infectivity after nuclease treatment but is reduced by harsh protein-denaturing conditions; in neurons it correlates with protease-resistant host-protein aggregates. Agent Y loses infectivity after RNase treatment; in plants it correlates with abundant 21–24 nt small RNAs complementary to the agent's sequence and no detectable protein-coding capacity. Which statement most accurately describes the impact of prions on cellular function relative to viroids in these systems?
Explanation: This question tests understanding of subviral particles: prions and viroids, and their role in cellular organization. Prions are misfolded proteins causing disease through protein aggregation, while viroids are RNA molecules affecting plants through RNA interference. The vignette describes Agent X (nuclease-resistant, protein-sensitive, causes protein aggregates) as a prion and Agent Y (RNase-sensitive, generates small RNAs) as a viroid. Choice A is correct because it accurately distinguishes prion pathology (protein misfolding/aggregation) from viroid pathology (RNA-based gene silencing). Choice B is incorrect as neither agent requires genome translation. Choice C reverses the mechanisms. Choice D misrepresents prion aggregates as consequences rather than causes of dysfunction.
A comparative experiment evaluates two subviral particles. In preparation A, infectivity is retained after RNase treatment but reduced after protease treatment; infected neurons accumulate protease-resistant aggregates of a host protein. In preparation B, infectivity is lost after RNase treatment but retained after protease treatment; infected plant cells show abundant 21–24 nt small RNAs mapping to the agent sequence. Which statement most accurately describes the impact of prions on cellular function as supported by preparation A?
Explanation: This question tests understanding of subviral particles: prions and viroids, and their role in cellular organization. Prions are misfolded proteins that template conformational changes in host proteins, while viroids are RNA molecules affecting plants. Preparation A shows RNase resistance, protease sensitivity, and protein aggregates - characteristic of prions. Choice A is correct because it accurately describes prion mechanism: templating conformational changes in host proteins, leading to aggregation that disrupts cellular function. Choice B incorrectly attributes RNA polymerase activity to prions. Choice C wrongly suggests prions have RNA genomes. Choice D misrepresents aggregation as an effect rather than cause of pathology.
In a prion exposure model, two neuronal lines are compared. Line 1 expresses normal levels of the host prion protein; Line 2 has markedly reduced expression of the host prion protein. After identical exposure to infectious material, Line 1 develops protease-resistant aggregates and synaptic loss, while Line 2 shows minimal aggregation and preserved synaptic markers. Which outcome would be expected from prion accumulation and best explains the difference between the lines?
Explanation: This question tests understanding of subviral particles: prions and viroids, and their role in cellular organization. Prions are misfolded proteins that require normal host prion protein as substrate for propagation. The vignette shows that reducing host prion protein expression (Line 2) protects against aggregate formation and synaptic loss compared to normal expression (Line 1). Choice A is correct because prion propagation absolutely requires host prion protein as substrate - reducing its abundance limits the material available for conversion to the misfolded form, thereby reducing aggregation and cellular dysfunction. Choice B incorrectly suggests prions have RNA genomes. Choice C reverses causality. Choice D wrongly attributes capsid formation to prions.
A neuroscience group examines how a subviral particle affects cellular organization. Neurons exposed to a prion-containing preparation show increased detergent-resistant membrane fractions and mislocalization of a glycosylphosphatidylinositol (GPI)-anchored host protein from the cell surface to intracellular aggregates. These changes occur without detectable viral nucleic acids and persist despite nucleases, but are prevented by compounds that stabilize the host protein's native conformation. Which outcome would be expected from prion accumulation in this context?
Explanation: This question tests understanding of subviral particles: prions and viroids, and their role in cellular organization. Prions are misfolded proteins that template the conversion of normal proteins into pathogenic forms, often affecting membrane-associated proteins. The vignette describes prion effects on neurons, including detergent-resistant membrane fractions and mislocalization of a GPI-anchored protein into aggregates. Choice B is correct because it accurately describes templated misfolding and aggregation of host membrane proteins leading to disrupted membrane organization and trafficking. Choice A is incorrect because prions do not produce viral capsid proteins. The prevention of these changes by protein-stabilizing compounds confirms the protein misfolding mechanism, and the absence of viral nucleic acids rules out conventional viral mechanisms.
In a prion-focused cell study, two neuronal lines are compared: Line 1 expresses a normal level of a GPI-anchored host protein implicated in prion propagation; Line 2 has markedly reduced expression of the same host protein. After exposure to identical prion-containing inocula, Line 1 develops abundant insoluble aggregates and progressive loss of synaptic marker staining, while Line 2 shows minimal aggregation and preserved synaptic markers. Which conclusion is most consistent with these results regarding the subviral particle's dependence on cellular components?
Explanation: This question tests understanding of subviral particles: prions and viroids, and their role in cellular organization. Prions require a host protein substrate (often PrPC) that can be converted to the misfolded form; without this substrate, prions cannot propagate. The vignette shows that Line 2, with reduced expression of the GPI-anchored host protein, resists prion infection. Choice A is correct because it accurately describes prion dependence on host expression of a convertible protein substrate for templated misfolding. Choice B is incorrect because prions do not have RNA genomes or require RNA polymerase. The differential susceptibility based on host protein expression levels is a hallmark of prion biology, confirming that the infectious agent requires the host protein as a substrate for propagation.
A comparative analysis of subviral particles notes that both studied agents lack capsids, but only one shows protease-resistant infectivity and a shift of a host protein to a β-sheet–rich form. The other is a small circular RNA associated with abundant 21–24 nt small RNAs and altered host mRNA levels in plants.
Which statement most accurately describes the key difference in how these agents depend on cellular organization to propagate?
Explanation: This question tests understanding of subviral particles: prions and viroids, and their role in cellular organization. Prions are misfolded proteins causing diseases by inducing misfolding in normal proteins, while viroids are small RNA particles affecting plants. In the vignette, agents differ in exploiting cellular pathways for propagation. Choice A is correct because it distinguishes protein vs. RNA dependencies. Choice C is incorrect because it swaps the mechanisms. Ensure understanding of prion vs. viroid mechanisms; look for context clues in vignette such as β-sheet shifts.
In a neuronal membrane study, exposure to a misfolded host protein conformer leads to increased detergent-insoluble aggregates and altered distribution of a GPI-anchored protein from the plasma membrane to endosomal compartments. Patch-clamp recordings show progressive changes in resting membrane potential variability. No nucleic acids are detected, and infectivity persists after nuclease treatment.
Which statement most accurately describes the impact of prions on cellular function?
Explanation: This question tests understanding of subviral particles: prions and viroids, and their role in cellular organization. Prions are misfolded proteins causing diseases by inducing misfolding in normal proteins, while viroids are small RNA particles affecting plants. In the vignette, prions affect neuronal membranes and potentials. Choice D is correct because it describes self-propagating misfolding disrupting homeostasis. Choice C is incorrect because prions are not circular RNAs. Ensure understanding of prion vs. viroid mechanisms; look for context clues in vignette like nuclease persistence.
A research group compares subviral particle stability under different treatments. An infectious brain homogenate retains activity after nuclease exposure and boiling in SDS-free buffer but loses activity after exposure to a strong denaturant that disrupts secondary structure. A plant sap preparation loses infectivity after RNase but remains infectious after protease treatment. Both preparations lack detectable capsid structures by electron microscopy.
Which statement best explains these observations in terms of cellular propagation?
Explanation: This question tests understanding of subviral particles: prions and viroids, and their role in cellular organization. Prions are misfolded proteins causing diseases by inducing misfolding in normal proteins, while viroids are small RNA particles affecting plants. In the vignette, the brain agent is a prion and plant agent a viroid based on stability. Choice A is correct because it links propagation to protein templating vs. RNA copying. Choice C is incorrect because it swaps the identities. Ensure understanding of prion vs. viroid mechanisms; look for context clues in vignette such as denaturant effects.
A hospital lab tests decontamination methods for a suspected prion-contaminated instrument. After standard UV irradiation and DNase/RNase treatment, a surface swab still seeds conversion of a recombinant host protein in a misfolding assay. After treatment with a strong protein-denaturing protocol, seeding activity is markedly reduced. The implicated agent lacks detectable nucleic acid.
Which outcome would be expected in patients exposed to residual contamination if infection occurs?
Explanation: This question tests understanding of subviral particles: prions and viroids, and their role in cellular organization. Prions are misfolded proteins causing diseases by inducing misfolding in normal proteins, while viroids are small RNA particles affecting plants. In the vignette, prions from contaminated instruments cause delayed neurodegeneration. Choice A is correct because it describes progressive aggregate accumulation. Choice B is incorrect because prions lack RNA genomes. Ensure understanding of prion vs. viroid mechanisms; look for context clues in vignette such as decontamination failures.
Two subviral particles are studied for how they persist without encoding polymerases. Particle A is associated with neurodegeneration; its activity is resistant to nucleases and correlates with conversion of a host protein to a β-sheet–rich, protease-resistant form. Particle B is associated with plant stunting; it is a small circular RNA found in the nucleus and produces abundant 21–24 nt small RNAs.
Which statement most accurately compares how A and B increase their effective copy number in host cells?
Explanation: This question tests understanding of subviral particles: prions and viroids, and their role in cellular organization. Prions are misfolded proteins causing diseases by inducing misfolding in normal proteins, while viroids are small RNA particles affecting plants. In the vignette, particle A is prion-like and B viroid-like in propagation. Choice D is correct because it compares templated conversion to RNA copying. Choice B is incorrect because neither translates polymerases. Ensure understanding of prion vs. viroid mechanisms; look for context clues in vignette such as lack of polymerases.
A greenhouse study examines a subviral particle implicated in reduced yield in potato plants. The infectious agent is a small, circular RNA that lacks a protein coat. Infected plants show accumulation of 21–24 nt small RNAs derived from the circular RNA and decreased expression of a subset of host transcripts involved in leaf development. Mechanical inoculation with purified RNA transmits disease, while treatment of the inoculum with RNase eliminates infectivity.
Based on the vignette, which cellular process is most directly implicated in symptom development?
Explanation: This question tests understanding of subviral particles: prions and viroids, and their role in cellular organization. Prions are misfolded proteins causing diseases by inducing misfolding in normal proteins, while viroids are small RNA particles affecting plants. In the vignette, viroids affect potato development through RNA interference. Choice D is correct because it links viroid-derived small RNAs to host mRNA suppression. Choice C is incorrect because it confuses viroids with prion misfolding. Ensure understanding of prion vs. viroid mechanisms; look for context clues in vignette like RNA transmission.
A plant virology lab isolates an infectious agent from citrus trees with leaf curling. The agent is a small, circular RNA detected in the nucleus; no capsid proteins are found. When infected plants are treated with a compound that reduces Dicer-like activity, the abundance of 21–24 nt small RNAs decreases, while the circular RNA level increases and symptoms worsen.
Based on the vignette, what is most consistent with viroid replication and host response?
Explanation: This question tests understanding of subviral particles: prions and viroids, and their role in cellular organization. Prions are misfolded proteins causing diseases by inducing misfolding in normal proteins, while viroids are small RNA particles affecting plants. In the vignette, viroids accumulate more with reduced Dicer, worsening symptoms. Choice A is correct because it explains host amplification and silencing limitation. Choice B is incorrect because viroids lack capsids. Ensure understanding of prion vs. viroid mechanisms; look for context clues in vignette such as small RNA changes.
A neurology lab investigates subviral particles in a cluster of rapidly progressive dementia cases. Postmortem cortical tissue shows abundant extracellular amyloid-like deposits and intracellular puncta that stain strongly with a conformational antibody recognizing a β-sheet–rich isoform of a host glycoprotein. Nuclease treatment of homogenates does not reduce infectivity in a cell-based seeding assay, but limited protease digestion leaves a smaller, resistant core that still seeds conversion of the native isoform in vitro. In cultured neurons exposed to patient-derived material, synaptic marker density decreases before overt cell death.
Which outcome would be expected from prion accumulation in these neurons?
Explanation: This question tests understanding of subviral particles: prions and viroids, and their role in cellular organization. Prions are misfolded proteins causing diseases by inducing misfolding in normal proteins, while viroids are small RNA particles affecting plants. In the vignette, prions were shown to disrupt neuronal cell function through protein aggregation, as evidenced by β-sheet–rich isoforms and nuclease-resistant infectivity. Choice A is correct because it accurately describes prion-induced neurodegeneration as supported by the vignette. Choice B is incorrect because it confuses prion mechanisms with viral budding processes. Ensure understanding of prion vs. viroid mechanisms; look for context clues in vignette such as resistance to nucleases indicating prions.
In a cell biology study of subviral particles, neurons are exposed to a purified, misfolded conformer of a host membrane glycoprotein. Within 24 hours, fluorescence microscopy shows redistribution of the native glycoprotein from the plasma membrane to detergent-insoluble membrane microdomains, with increased endosomal puncta. No nucleic acid is detected in the inoculum, and infectivity persists after nuclease treatment. Over time, membrane integrity assays show increased permeability and altered ion gradients.
Which statement most accurately describes the impact of prions on cellular function in this system?
Explanation: This question tests understanding of subviral particles: prions and viroids, and their role in cellular organization. Prions are misfolded proteins causing diseases by inducing misfolding in normal proteins, while viroids are small RNA particles affecting plants. In the vignette, prions alter neuronal membrane dynamics through misfolded protein accumulation. Choice D is correct because it describes prion templating and aggregation disrupting membranes. Choice B is incorrect because prions do not integrate into genomes. Ensure understanding of prion vs. viroid mechanisms; look for context clues in vignette like nuclease resistance.
In a neurobiology experiment, mice are inoculated with a subviral particle preparation that contains no detectable nucleic acids. Over months, animals develop motor deficits. Brain tissue shows increased levels of a protease-resistant fragment of a host protein and spongiform-like vacuolation, with minimal lymphocytic infiltration. Infectivity is reduced by protein-denaturing treatment but not by RNase.
Which statement most accurately describes the mechanism driving pathology in this model?
Explanation: This question tests understanding of subviral particles: prions and viroids, and their role in cellular organization. Prions are misfolded proteins causing diseases by inducing misfolding in normal proteins, while viroids are small RNA particles affecting plants. In the vignette, prions drive pathology in mice via protein conversion. Choice D is correct because it describes templated misfolding and aggregation. Choice B is incorrect because prions lack RNA genomes. Ensure understanding of prion vs. viroid mechanisms; look for context clues in vignette such as vacuolation.