Unit 10: Evaluation of Biological Disease Management - Practice Quiz

PTH215 — Biopesticides And Biofertilizers In Plant Disease Management 60 Questions
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1 What is the main purpose of evaluating a biological control agent under laboratory conditions?

Evaluation of biological disease management strategies against plant pathogens under laboratory conditions Easy
A. To test its activity against a pathogen
B. To determine the market price of crops
C. To evaluate the color of harvested seeds
D. To measure crop yield in the field

2 Which laboratory technique commonly tests the interaction between a fungal biocontrol agent and a fungal pathogen on the same plate?

Evaluation of biological disease management strategies against plant pathogens under laboratory conditions Easy
A. Dual-culture technique
B. Soil sedimentation technique
C. Seed flotation technique
D. Leaf washing technique

3 Which medium is commonly used to grow many fungi during laboratory evaluation?

Evaluation of biological disease management strategies against plant pathogens under laboratory conditions Easy
A. Buffered saline only
B. Sterile mineral oil
C. Nutrient-free water
D. Potato dextrose agar

4 What does a clear inhibition zone around a bacterial biocontrol colony usually indicate?

Evaluation of biological disease management strategies against plant pathogens under laboratory conditions Easy
A. Complete loss of nutrients
B. Increased pathogen sporulation
C. Contamination of the medium
D. Suppression of pathogen growth

5 Why is an untreated pathogen culture included in a laboratory experiment?

Evaluation of biological disease management strategies against plant pathogens under laboratory conditions Easy
A. To change the incubation temperature
B. To provide a control for comparison
C. To increase biocontrol multiplication
D. To sterilize the culture medium

6 Which measurement is commonly used to evaluate the growth of a fungal pathogen on an agar plate?

Evaluation of biological disease management strategies against plant pathogens under laboratory conditions Easy
A. Leaf number
B. Colony diameter
C. Root weight
D. Plant height

7 What is the purpose of maintaining aseptic conditions during laboratory evaluation?

Evaluation of biological disease management strategies against plant pathogens under laboratory conditions Easy
A. To increase room humidity
B. To accelerate water evaporation
C. To darken the culture medium
D. To prevent unwanted contamination

8 What does reduced pathogen growth in a treated plate suggest?

Evaluation of biological disease management strategies against plant pathogens under laboratory conditions Easy
A. The medium has increased fertility
B. The pathogen has gained virulence
C. The culture has produced more spores
D. The treatment has antagonistic activity

9 Why are replicate plates used in a laboratory bioassay?

Evaluation of biological disease management strategies against plant pathogens under laboratory conditions Easy
A. To improve the reliability of results
B. To replace measurement of growth
C. To avoid labeling the treatments
D. To eliminate the need for controls

10 In a dual-culture assay, where are the pathogen and fungal biocontrol agent usually placed?

Evaluation of biological disease management strategies against plant pathogens under laboratory conditions Easy
A. Inside different plant roots
B. On separate field plots
C. On opposite sides of one plate
D. In separate greenhouse compartments

11 What is a major advantage of greenhouse evaluation over field evaluation?

Evaluation of biological disease management strategies against plant pathogens under greenhouse conditions Easy
A. Pathogen inoculation is never required
B. All plant diseases are eliminated
C. Experimental controls are unnecessary
D. Environmental conditions can be controlled

12 Which group provides a basic comparison when testing a biocontrol treatment on diseased plants?

Evaluation of biological disease management strategies against plant pathogens under greenhouse conditions Easy
A. Plants grown in darkness
B. Plants from another crop
C. Unlabeled harvested plants
D. Inoculated untreated plants

13 What does disease incidence measure in a greenhouse experiment?

Evaluation of biological disease management strategies against plant pathogens under greenhouse conditions Easy
A. The temperature of the potting mix
B. The amount of fertilizer applied
C. The average height of all plants
D. The proportion of plants showing disease

14 What does disease severity describe?

Evaluation of biological disease management strategies against plant pathogens under greenhouse conditions Easy
A. The age of the greenhouse structure
B. The number of pots in a trial
C. The extent of disease on a plant
D. The volume of water supplied

15 Why should greenhouse treatments be assigned randomly to pots?

Evaluation of biological disease management strategies against plant pathogens under greenhouse conditions Easy
A. To avoid recording symptoms
B. To reduce positional bias
C. To increase pathogen virulence
D. To eliminate treatment replication

16 Which observation most directly indicates successful biological disease management in a greenhouse?

Evaluation of biological disease management strategies against plant pathogens under greenhouse conditions Easy
A. Greater symptom development
B. Lower disease severity
C. Higher pathogen population
D. Earlier plant wilting

17 Why are plants deliberately inoculated with a pathogen in many greenhouse trials?

Evaluation of biological disease management strategies against plant pathogens under greenhouse conditions Easy
A. To sterilize the potting medium
B. To improve fertilizer absorption
C. To prevent all symptom development
D. To create consistent disease pressure

18 Which method can be used to apply a biological control agent to plant roots?

Evaluation of biological disease management strategies against plant pathogens under greenhouse conditions Easy
A. Leaf counting
B. Soil drenching
C. Stem measuring
D. Flower tagging

19 Why should the same plant variety be used across greenhouse treatments?

Evaluation of biological disease management strategies against plant pathogens under greenhouse conditions Easy
A. To change greenhouse humidity
B. To reduce variation due to genotype
C. To create different disease reactions
D. To remove the need for replication

20 What should be recorded if a biological treatment causes yellowing or stunting in otherwise healthy plants?

Evaluation of biological disease management strategies against plant pathogens under greenhouse conditions Easy
A. Pathogen sporulation
B. Possible phytotoxicity
C. Culture purity
D. Agar contamination

21 A bacterial biocontrol isolate produces a clear inhibition zone against a fungal pathogen on agar. What is the most appropriate interpretation?

Evaluation of biological disease management strategies against plant pathogens under laboratory conditions Medium
A. The isolate will control the disease under field conditions
B. The pathogen is unable to infect living plants
C. The isolate must improve plant nutrient uptake
D. The isolate may produce diffusible antifungal compounds

22 In a dual-culture assay, a fungal pathogen grows 80 mm in the control plate and 50 mm when exposed to a biocontrol fungus. What is the percentage inhibition of radial growth?

Evaluation of biological disease management strategies against plant pathogens under laboratory conditions Medium
A.
B.
C.
D.

23 Why should a laboratory assay include a pathogen-only control when testing a microbial antagonist?

Evaluation of biological disease management strategies against plant pathogens under laboratory conditions Medium
A. To determine the nutrient content of the medium
B. To prevent contamination by other microbes
C. To measure normal pathogen growth
D. To increase antagonist population density

24 A biocontrol bacterium inhibits a pathogen only when both organisms are separated by a membrane that permits chemical diffusion. Which mechanism is most strongly indicated?

Evaluation of biological disease management strategies against plant pathogens under laboratory conditions Medium
A. Production of diffusible metabolites
B. Direct enzymatic penetration of roots
C. Induction of systemic plant resistance
D. Competition for attachment sites

25 Which experimental design best tests whether a biofertilizer indirectly reduces pathogen growth by improving plant nutritional status in vitro?

Evaluation of biological disease management strategies against plant pathogens under laboratory conditions Medium
A. Use different incubation temperatures for each treatment
B. Test the biofertilizer without including a pathogen control
C. Compare pathogen growth in nutrient-adjusted and untreated media
D. Measure only the color of colonies after incubation

26 A volatile-compound assay shows pathogen inhibition, but no inhibition occurs in a contact assay. What should be tested next?

Evaluation of biological disease management strategies against plant pathogens under laboratory conditions Medium
A. Whether the plant has developed vascular tissue
B. Whether the medium contains sufficient agar
C. Whether the antagonist releases inhibitory volatiles
D. Whether the pathogen forms larger spores

27 A treatment produces highly variable inhibition zones among replicate plates. Which action would most improve the reliability of the assay?

Evaluation of biological disease management strategies against plant pathogens under laboratory conditions Medium
A. Record only the largest inhibition zone
B. Remove all untreated control plates
C. Increase replication and standardize inoculum density
D. Use a different pathogen for every replicate

28 A fungal antagonist overgrows the pathogen colony in an assay. Which additional observation would provide stronger evidence of mycoparasitism?

Evaluation of biological disease management strategies against plant pathogens under laboratory conditions Medium
A. Microscopic attachment and penetration of pathogen hyphae
B. A higher number of uninoculated plates
C. A change in the color of the culture medium
D. A larger antagonist colony on the control plate

29 When screening several biocontrol isolates, why is pathogen growth rate important to consider before comparing inhibition percentages?

Evaluation of biological disease management strategies against plant pathogens under laboratory conditions Medium
A. Different growth rates can distort apparent inhibition
B. Growth rate determines whether an isolate is a bacterium
C. Slow-growing pathogens always resist biological control
D. Fast-growing pathogens cannot infect plants

30 A candidate biocontrol agent suppresses a pathogen in vitro but also inhibits germination of the crop seed. What is the best conclusion?

Evaluation of biological disease management strategies against plant pathogens under laboratory conditions Medium
A. The agent should be applied at a higher concentration
B. The pathogen assay result should be ignored completely
C. The agent requires further safety and selectivity testing
D. The agent is automatically suitable for greenhouse use

31 A greenhouse experiment compares a biofertilizer treatment with an untreated control, but the treatment pots receive more irrigation. Why is this a major problem?

Evaluation of biological disease management strategies against plant pathogens under greenhouse conditions Medium
A. Untreated controls are unnecessary in greenhouse trials
B. Excess water always eliminates plant disease
C. Biofertilizers cannot be tested in pots
D. Irrigation becomes a confounding variable

32 Which treatment arrangement most directly determines whether a microbial inoculant protects plants after pathogen challenge?

Evaluation of biological disease management strategies against plant pathogens under greenhouse conditions Medium
A. Healthy plants compared with plants receiving extra fertilizer
B. Pathogen-only plants compared with different pot sizes
C. Inoculant plus pathogen compared with pathogen-only plants
D. Inoculant-only plants compared with uninoculated soil

33 Disease severity is recorded on a to scale for treated and control plants. What is the main advantage of using several plants per treatment?

Evaluation of biological disease management strategies against plant pathogens under greenhouse conditions Medium
A. It accounts for variation among individual plants
B. It ensures every plant receives identical infection
C. It guarantees that the pathogen is genetically uniform
D. It eliminates the need for randomization

34 A treatment lowers disease severity but also reduces plant height and biomass. Which additional result is most important before recommending the treatment?

Evaluation of biological disease management strategies against plant pathogens under greenhouse conditions Medium
A. Evidence that the treatment concentration is phytotoxic
B. The brand of pots used for unrelated experiments
C. The color of the greenhouse walls
D. The number of pathogen spores in the stock culture

35 A biocontrol treatment works well at high humidity but not at low humidity. What does this result suggest about the treatment?

Evaluation of biological disease management strategies against plant pathogens under greenhouse conditions Medium
A. It is unaffected by greenhouse management
B. It has no biological activity against the pathogen
C. It can only function through plant nutrition
D. Its performance depends on environmental conditions

36 Why should pots in a greenhouse experiment be randomized and periodically repositioned?

Evaluation of biological disease management strategies against plant pathogens under greenhouse conditions Medium
A. To prevent plants from developing roots
B. To make treatment differences more variable
C. To increase the virulence of the pathogen
D. To reduce effects of environmental gradients

37 A greenhouse treatment reduces disease incidence from to . What is the relative reduction in disease incidence?

Evaluation of biological disease management strategies against plant pathogens under greenhouse conditions Medium
A.
B.
C.
D.

38 A microbial inoculant reduces symptoms in greenhouse plants, but pathogen populations in roots remain unchanged. Which explanation is most plausible?

Evaluation of biological disease management strategies against plant pathogens under greenhouse conditions Medium
A. The pathogen must be absent from the roots
B. The inoculant may induce host resistance
C. The symptoms must be caused only by nutrient deficiency
D. The inoculant cannot affect plant disease

39 A greenhouse trial includes a chemical fungicide standard, a biological treatment, an untreated control, and plants without pathogen inoculation. What is the purpose of the non-inoculated plants?

Evaluation of biological disease management strategies against plant pathogens under greenhouse conditions Medium
A. To provide a source of additional pathogen inoculum
B. To replace the pathogen-only control
C. To estimate treatment effects on healthy plant growth
D. To increase disease pressure in treated pots

40 A biological treatment performs inconsistently across two greenhouse trials. Which interpretation is most scientifically appropriate?

Evaluation of biological disease management strategies against plant pathogens under greenhouse conditions Medium
A. The treatment should be rejected without checking trial conditions
B. One successful trial proves universal effectiveness
C. The treatment may require optimization under specific conditions
D. The pathogen is always resistant to biological treatments

41 A bacterial antagonist produces a clear inhibition zone against a fungal pathogen on agar. Which additional experiment most directly determines whether inhibition is caused by a diffusible metabolite rather than nutrient competition?

Evaluation of biological disease management strategies against plant pathogens under laboratory conditions Hard
A. Replace the agar with a richer growth medium
B. Repeat the assay with a higher antagonist density
C. Increase the incubation temperature slightly
D. Test cell-free filtrate from the antagonist culture

42 A biocontrol treatment reduces pathogen colony diameter by 40% in dual culture, but the pathogen grows equally well when exposed to a nonliving antagonist biomass control. What is the strongest interpretation?

Evaluation of biological disease management strategies against plant pathogens under laboratory conditions Hard
A. The treatment failed because biomass cannot affect pathogens
B. The treatment acts mainly through living-cell competition
C. The treatment may involve compounds released from biomass
D. The treatment depends mainly on volatile compounds

43 When comparing three microbial antagonists in a plate assay, pathogen growth differs among experimental runs because inoculum age varies. Which design best addresses this source of variation?

Evaluation of biological disease management strategies against plant pathogens under laboratory conditions Hard
A. Use a larger number of plates in one run
B. Average results after removing extreme treatment values
C. Randomize treatments within each experimental run
D. Select the run with the smallest control variance

44 A volatile-compound assay shows pathogen inhibition only when antagonist and pathogen share the same sealed vessel but do not contact each other. Which control is essential for interpreting the result?

Evaluation of biological disease management strategies against plant pathogens under laboratory conditions Hard
A. A vessel containing an unrelated fungal isolate
B. A larger vessel containing both organisms
C. An open vessel containing antagonist alone
D. A sealed vessel containing pathogen alone

45 A treatment lowers pathogen spore germination from 80% to 40%, but the untreated control has only 50% germination in a repeated experiment. Which conclusion is most defensible?

Evaluation of biological disease management strategies against plant pathogens under laboratory conditions Hard
A. The treatment is ineffective because germination remains above zero
B. The treatment consistently provides 50% suppression
C. The treatment effect should be judged against each matched control
D. The treatment is superior because its absolute reduction is unchanged

46 A filtrate inhibits pathogen growth at pH 5.5 but not after neutralization to pH 7.0. Which comparison best tests whether acidity, rather than a specific antimicrobial, explains inhibition?

Evaluation of biological disease management strategies against plant pathogens under laboratory conditions Hard
A. Compare the filtrate with a more concentrated antagonist culture
B. Compare the filtrate with an uninoculated medium adjusted to pH 5.5
C. Compare the filtrate with medium containing additional nutrients
D. Compare the filtrate with a heat-treated pathogen suspension

47 Two antagonists produce identical inhibition zones, but one grows much faster than the pathogen and the other grows slowly. Which additional measurement is most useful for distinguishing their suppression mechanisms?

Evaluation of biological disease management strategies against plant pathogens under laboratory conditions Hard
A. Measure the agar thickness after incubation
B. Measure the color of the colonies at the endpoint
C. Measure antagonist biomass and pathogen biomass over time
D. Measure only the final diameter of the inhibition zones

48 A fungal biocontrol isolate suppresses one pathogen strain strongly but has no effect on a second strain. Which interpretation is most scientifically appropriate?

Evaluation of biological disease management strategies against plant pathogens under laboratory conditions Hard
A. The second strain must have been incorrectly identified
B. The isolate is universally ineffective against the pathogen species
C. The assay proves that biological control lacks reproducibility
D. The response may depend on pathogen genotype or susceptibility

49 In a laboratory assay, disease suppression is calculated as , where and are pathogen growth measurements. If and , what is suppression?

Evaluation of biological disease management strategies against plant pathogens under laboratory conditions Hard
A. 25%
B. 50%
C. 40%
D. 75%

50 A bacterium reduces pathogen growth in vitro, but its effect disappears when the medium is supplemented with excess iron. Which mechanism is most consistent with this observation?

Evaluation of biological disease management strategies against plant pathogens under laboratory conditions Hard
A. Induction of systemic resistance
B. Direct degradation of pathogen DNA
C. Inhibition caused by altered light exposure
D. Iron competition through siderophore activity

51 A greenhouse trial compares a microbial biocontrol treatment with a fungicide, but plants in different benches receive different light and temperature levels. Which design most effectively limits bench effects?

Evaluation of biological disease management strategies against plant pathogens under greenhouse conditions Hard
A. Analyze only plants located near the greenhouse center
B. Assign all biological treatments to the coolest bench
C. Increase the concentration only on variable benches
D. Use randomized complete blocks based on bench position

52 A treatment reduces disease severity but also reduces plant biomass because of temporary phytotoxicity. Which endpoint best supports a recommendation for practical disease management?

Evaluation of biological disease management strategies against plant pathogens under greenhouse conditions Hard
A. The number of antagonist colonies recovered
B. Final biomass or yield relative to untreated plants
C. Pathogen DNA concentration alone
D. Disease severity alone

53 In a greenhouse experiment, plants treated with an antagonist before pathogen inoculation show lower disease, whereas simultaneous application does not. Which conclusion is most justified?

Evaluation of biological disease management strategies against plant pathogens under greenhouse conditions Hard
A. The simultaneous treatment must contain fewer viable cells
B. The pathogen cannot infect plants under greenhouse conditions
C. The antagonist probably requires preestablishment or priming
D. The antagonist is effective only after disease is severe

54 A greenhouse treatment reduces disease in sterilized soil but not in nonsterilized soil. Which follow-up is most informative for identifying the cause?

Evaluation of biological disease management strategies against plant pathogens under greenhouse conditions Hard
A. Replace the pathogen with a nonpathogenic isolate
B. Compare antagonist establishment and native microbial communities
C. Repeat only the sterilized-soil treatment at a higher dose
D. Measure plant height without assessing pathogen infection

55 Disease severity scores are recorded on an ordinal 0-to-5 scale at six dates. Which analysis best represents disease development over time?

Evaluation of biological disease management strategies against plant pathogens under greenhouse conditions Hard
A. Use the highest score from each plant as the sole endpoint
B. Calculate the area under the disease progress curve
C. Average treatment means without considering sampling dates
D. Compare only the final severity score

56 A biocontrol treatment appears effective in a greenhouse trial, but pathogen inoculum is applied unevenly among pots. Which result would most strongly weaken the efficacy claim?

Evaluation of biological disease management strategies against plant pathogens under greenhouse conditions Hard
A. Antagonist populations remain detectable at harvest
B. Plant height varies slightly among treatment groups
C. Disease severity is correlated with measured inoculum load
D. The greenhouse temperature changes within the normal range

57 A microbial treatment reduces disease only under high humidity, while the product is intended for field use across variable weather. Which next step provides the strongest evaluation?

Evaluation of biological disease management strategies against plant pathogens under greenhouse conditions Hard
A. Increase the dose until humidity has no measurable effect
B. Test treatment-by-humidity interactions across realistic conditions
C. Report the high-humidity result as the universal efficacy estimate
D. Discard all results obtained under high humidity

58 A greenhouse study places five plants in each pot and analyzes all plants as independent replicates. What is the main statistical problem?

Evaluation of biological disease management strategies against plant pathogens under greenhouse conditions Hard
A. The pathogen cannot infect multiple plants per pot
B. Plants within a pot are pseudoreplicates
C. Greenhouse experiments require no replication
D. The treatment concentration is necessarily too low

59 A treatment lowers disease severity, but pathogen quantitative PCR values remain unchanged while viable pathogen counts decrease. Which interpretation is most plausible?

Evaluation of biological disease management strategies against plant pathogens under greenhouse conditions Hard
A. Disease severity cannot be affected by pathogen viability
B. Quantitative PCR always measures viable pathogen cells
C. The treatment may reduce pathogen viability without reducing DNA quantity
D. The treatment must increase pathogen reproduction

60 A combined treatment of a biofertilizer and a biocontrol agent performs better than either treatment alone. Which comparison is required to determine whether the interaction is synergistic rather than merely additive?

Evaluation of biological disease management strategies against plant pathogens under greenhouse conditions Hard
A. Compare antagonist populations without measuring disease
B. Compare observed combined efficacy with efficacy expected from individual effects
C. Compare the combination only with the untreated control
D. Compare the combination only with the higher individual dose