Unit 12: Integrated Biological Plant Disease Management - Practice Quiz

PTH215 — Biopesticides And Biofertilizers In Plant Disease Management 60 Questions
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1 What is a biopesticide?

Integrated biological management of plant diseases using biopesticides Easy
A. A machine used to remove infected plants
B. A pesticide derived from living organisms or natural products
C. A fertilizer made only from synthetic minerals
D. A chemical used only to increase soil acidity

2 Which fungus is commonly used as a biocontrol agent against soil-borne plant pathogens?

Integrated biological management of plant diseases using biopesticides Easy
A. Trichoderma harzianum
B. Ustilago maydis
C. Albugo candida
D. Puccinia graminis

3 Which bacterium is widely used as a microbial biopesticide for plant disease management?

Integrated biological management of plant diseases using biopesticides Easy
A. Clostridium tetani
B. Vibrio cholerae
C. Bacillus subtilis
D. Salmonella enterica

4 In biological disease management, what does competition between a biocontrol agent and a pathogen involve?

Integrated biological management of plant diseases using biopesticides Easy
A. Raising the soil salt concentration
B. Increasing the pathogen's reproduction
C. Converting pathogens into fertilizers
D. Competing for nutrients and space

5 What is antibiosis in biological plant disease management?

Integrated biological management of plant diseases using biopesticides Easy
A. Removal of water from plant tissues
B. Addition of nutrients that feed pathogens
C. Transfer of disease between host plants
D. Production of compounds that inhibit pathogens

6 Why are biopesticides often included in integrated plant disease management?

Integrated biological management of plant diseases using biopesticides Easy
A. They always eliminate every pathogen instantly
B. They increase chemical residues on harvested crops
C. They permanently replace all farming practices
D. They can reduce reliance on synthetic pesticides

7 Which application method directly coats seeds with a microbial biopesticide before planting?

Integrated biological management of plant diseases using biopesticides Easy
A. Foliar pruning
B. Seed treatment
C. Fruit grading
D. Flood irrigation

8 What is a biofertilizer?

Integrated biological management of plant diseases using biofertilizers Easy
A. A mixture containing only chemical fungicides
B. A device for measuring soil temperature
C. A preparation containing beneficial living microorganisms
D. A coating used to preserve harvested fruit

9 Which microorganism forms nitrogen-fixing nodules on the roots of legumes?

Integrated biological management of plant diseases using biofertilizers Easy
A. Fusarium
B. Alternaria
C. Phytophthora
D. Rhizobium

10 What is a major function of phosphate-solubilizing biofertilizers?

Integrated biological management of plant diseases using biofertilizers Easy
A. Making plant roots completely water-resistant
B. Preventing all insects from reaching leaves
C. Making soil phosphorus more available to plants
D. Increasing the salinity around plant roots

11 How can biofertilizers indirectly help plants resist diseases?

Integrated biological management of plant diseases using biofertilizers Easy
A. By stopping all microbial activity near roots
B. By improving plant nutrition and vigor
C. By creating wounds in plant roots
D. By increasing pathogen populations in soil

12 Which beneficial association helps plants absorb phosphorus and water through fungal hyphae?

Integrated biological management of plant diseases using biofertilizers Easy
A. Viral association
B. Mycorrhizal association
C. Saprophytic infection
D. Parasitic association

13 Where are many plant growth-promoting rhizobacteria naturally active?

Integrated biological management of plant diseases using biofertilizers Easy
A. Within irrigation pipes
B. In the soil around roots
C. On agricultural machinery
D. Inside dry storage bags

14 Which is an appropriate way to use a biofertilizer in an integrated disease management program?

Integrated biological management of plant diseases using biofertilizers Easy
A. Apply it only after harvesting the crop
B. Use it while ignoring all field sanitation
C. Replace healthy seed with infected seed
D. Combine it with sanitation and resistant varieties

15 What is a botanical pesticide?

Integrated biological management of plant diseases using botanical pesticides Easy
A. A pesticide obtained from plants
B. A pesticide made only from metals
C. A tool used for crop harvesting
D. A nutrient produced from rocks

16 Which plant is a common source of botanical pesticide products?

Integrated biological management of plant diseases using botanical pesticides Easy
A. Wheat
B. Neem
C. Rice
D. Maize

17 Which active compound is commonly associated with neem-based pesticides?

Integrated biological management of plant diseases using botanical pesticides Easy
A. Glucose
B. Azadirachtin
C. Chlorophyll
D. Cellulose

18 Which plant material is commonly prepared as an extract for its antimicrobial properties?

Integrated biological management of plant diseases using botanical pesticides Easy
A. Rice husks
B. Wheat straw
C. Garlic cloves
D. Cotton fibers

19 What is one common environmental advantage of many botanical pesticides?

Integrated biological management of plant diseases using botanical pesticides Easy
A. They increase residues after every application
B. They contain only synthetic heavy metals
C. They often break down relatively quickly
D. They always remain in soil permanently

20 Why should the recommended concentration be followed when applying a botanical pesticide?

Integrated biological management of plant diseases using botanical pesticides Easy
A. To guarantee permanent removal of every pathogen
B. To make protective equipment unnecessary during spraying
C. To eliminate the need for correct application timing
D. To provide control while reducing crop injury

21 A tomato grower repeatedly observes damping-off caused by Pythium in nursery trays. Which integrated treatment is most appropriate for reducing the disease biologically?

Integrated biological management of plant diseases using biopesticides Medium
A. Apply a viral insecticide to the seeds and reduce ventilation
B. Apply Bacillus thuringiensis to the foliage and increase irrigation
C. Apply Trichoderma to the potting medium and maintain proper drainage
D. Apply arbuscular mycorrhizae to leaves and maintain waterlogging

22 A biopesticide based on Pseudomonas fluorescens is applied to crop roots. Which result would best indicate successful biological disease management?

Integrated biological management of plant diseases using biopesticides Medium
A. Complete soil sterilization and delayed crop emergence
B. Stable root colonization and reduced disease severity
C. Rapid leaf desiccation and reduced microbial diversity
D. Higher pathogen sporulation and lower root colonization

23 A farmer plans to combine a living fungal biopesticide with a chemical fungicide. What should be checked first?

Integrated biological management of plant diseases using biopesticides Medium
A. Whether the crop produces more pollen after treatment
B. Whether the fungus changes the soil's mineral composition
C. Whether the fungicide increases the crop's planting density
D. Whether the fungicide is compatible with the biocontrol fungus

24 A foliar bacterial biopesticide gives inconsistent control of a leaf disease during hot, dry weather. Which adjustment is most likely to improve its performance?

Integrated biological management of plant diseases using biopesticides Medium
A. Apply it only after severe symptoms cover the canopy
B. Apply it during cooler hours with adequate leaf moisture
C. Apply it at midday when solar radiation is strongest
D. Apply it with a broad-spectrum bactericide at full rate

25 In a field with a history of seedling root rot, when should a microbial seed-treatment biopesticide ideally be applied?

Integrated biological management of plant diseases using biopesticides Medium
A. After harvest while residues are being removed
B. During flowering after the canopy has closed
C. At seed coating or immediately before sowing
D. After root rot has destroyed most seedlings

26 Two strains of Trichoderma inhibit a soilborne pathogen equally well in laboratory culture, but only one controls disease in the field. Which trait most likely explains its field success?

Integrated biological management of plant diseases using biopesticides Medium
A. Dependence on constant temperature and humidity
B. Rapid rhizosphere colonization under field conditions
C. Production of darker spores on laboratory agar
D. Formation of larger colonies in sterile glassware

27 A biocontrol bacterium suppresses a fungal pathogen by removing iron from the rhizosphere. Which bacterial product is primarily responsible?

Integrated biological management of plant diseases using biopesticides Medium
A. Cellulose that strengthens fungal cell walls
B. Siderophores that bind available iron
C. Starch that supplies energy to roots
D. Ethylene that increases pathogen sporulation

28 A phosphorus-deficient crop also suffers from a root pathogen. Which biofertilizer is most useful for improving phosphorus uptake while supporting root health?

Integrated biological management of plant diseases using biofertilizers Medium
A. A contact herbicide incorporated into the soil
B. Arbuscular mycorrhizal fungi applied near the roots
C. Bacillus thuringiensis sprayed on mature leaves
D. A nucleopolyhedrovirus applied to insect larvae

29 A legume field is inoculated with an effective Rhizobium strain. How can this practice indirectly reduce plant disease risk?

Integrated biological management of plant diseases using biofertilizers Medium
A. By preventing every insect from feeding on leaves
B. By sterilizing the soil around every root
C. By directly digesting all fungal resting spores
D. By improving nitrogen nutrition and plant vigor

30 A farmer applies a biofertilizer containing living plant-growth-promoting bacteria to saline soil. Which factor is most important for selecting an effective strain?

Integrated biological management of plant diseases using biofertilizers Medium
A. Its inability to interact with native microorganisms
B. Its ability to produce the brightest colony pigment
C. Its requirement for sterile soil throughout the season
D. Its ability to tolerate salinity and colonize roots

31 A biofertilizer treatment increases root biomass but does not reduce disease severity in a heavily infested field. What is the best integrated response?

Integrated biological management of plant diseases using biofertilizers Medium
A. Stop monitoring because root growth has improved
B. Combine it with sanitation and a targeted biocontrol agent
C. Increase irrigation until the soil remains saturated
D. Use the biofertilizer alone at a lower dose

32 Why should excessive nitrogen fertilizer be avoided when integrating nitrogen-fixing biofertilizers into disease management?

Integrated biological management of plant diseases using biofertilizers Medium
A. It can reduce biological fixation and promote susceptible growth
B. It always kills pathogens before they infect the crop
C. It converts all beneficial bacteria into fungal pathogens
D. It permanently prevents roots from absorbing phosphorus

33 Which observation best distinguishes disease suppression by induced systemic resistance from direct pathogen killing by a biofertilizer organism?

Integrated biological management of plant diseases using biofertilizers Medium
A. Untreated upper leaves become more resistant after root inoculation
B. The pathogen is eliminated from every soil sample
C. Root-zone temperature rises immediately after application
D. The biofertilizer forms a visible coating on each leaf

34 A biofertilizer containing phosphate-solubilizing bacteria is applied to alkaline soil. Which outcome would most directly show that it is functioning?

Integrated biological management of plant diseases using biofertilizers Medium
A. Complete removal of nitrogen from the root zone
B. Increased plant-available phosphorus near the rhizosphere
C. Immediate elimination of all airborne pathogen spores
D. Reduced sunlight reaching the lower crop canopy

35 A neem-based botanical pesticide is included in a disease-management program. Which application strategy is generally most appropriate?

Integrated biological management of plant diseases using botanical pesticides Medium
A. Apply with strong alkali without checking compatibility
B. Apply once to sterilize the soil for several years
C. Apply only after the crop is completely defoliated
D. Apply preventively or during early disease development

36 A garlic extract controls a fungal disease in laboratory tests but performs poorly after field application. Which factor is the most likely explanation?

Integrated biological management of plant diseases using botanical pesticides Medium
A. Conversion of the extract into a synthetic fertilizer
B. Rapid degradation by sunlight and weather exposure
C. Complete absence of microbes from laboratory cultures
D. Permanent accumulation of the extract in plant tissue

37 Before spraying a concentrated essential-oil formulation on a new crop variety, what should a grower do first?

Integrated biological management of plant diseases using botanical pesticides Medium
A. Mix it with every available pesticide simultaneously
B. Delay application until symptoms cover all plant tissues
C. Apply the highest concentration to the entire field
D. Test a small area for phytotoxicity and efficacy

38 A botanical fungicide has good activity but is easily washed off by rain. Which management decision would most improve disease control?

Integrated biological management of plant diseases using botanical pesticides Medium
A. Reapply it after rain according to label directions
B. Use it only when disease severity reaches its maximum
C. Increase irrigation directly after every application
D. Apply it immediately before forecast heavy rainfall

39 A farmer wants to combine a botanical pesticide with a microbial biopesticide. Which procedure best supports compatibility?

Integrated biological management of plant diseases using botanical pesticides Medium
A. Mix them at full rates without preliminary testing
B. Check labels and test whether the extract inhibits the microbe
C. Store the mixture for several months before spraying
D. Assume all plant extracts stimulate microbial survival

40 A plant extract reduces pathogen spore germination but provides protection for only three days. In an integrated program, how should it be used?

Integrated biological management of plant diseases using botanical pesticides Medium
A. Use timed applications with sanitation and resistant cultivars
B. Use one application and discontinue disease monitoring
C. Replace all cultural controls with the plant extract
D. Apply only to crop residues after harvest is complete

41 A greenhouse crop is repeatedly damaged by damping-off caused by Pythium aphanidermatum. A Trichoderma product suppresses the pathogen mainly through rhizosphere colonization and competition. Which application strategy is most likely to provide reliable control?

Integrated biological management of plant diseases using biopesticides Hard
A. Apply the product as a seed and substrate treatment before pathogen establishment
B. Apply the product to crop residues immediately after the seedlings are removed
C. Apply the product as a foliar spray after damping-off symptoms become visible
D. Apply the product as a root drench only after widespread seedling collapse

42 A grower wants to integrate a viable Bacillus subtilis biopesticide with a copper bactericide. Laboratory testing shows that the label-rate copper treatment reduces viable Bacillus propagules by 99% after direct mixing. What is the best integration decision?

Integrated biological management of plant diseases using biopesticides Hard
A. Replace copper with additional nitrogen to improve bacterial establishment
B. Tank-mix both products because bacterial spores tolerate all copper concentrations
C. Increase the Bacillus dose until the initial propagule count offsets copper toxicity
D. Apply the products separately with an interval confirmed by compatibility testing

43 In a factorial field trial, a microbial antagonist reduces disease severity from 60% to 40%, sanitation alone reduces it from 60% to 35%, and the combination reduces it to 10%. Under an additive percentage-point model, what does the combined result indicate?

Integrated biological management of plant diseases using biopesticides Hard
A. Antagonism, because the combined reduction is smaller than either individual reduction
B. Synergy, because observed severity is below the 15% additive expectation
C. Redundancy, because sanitation and the antagonist act on the same disease cycle
D. Independence, because each treatment produces a measurable reduction in disease

44 A nonpathogenic rhizobacterium applied to roots reduces a foliar disease, but the bacterium cannot be recovered from leaves. Which experiment most directly tests whether induced systemic resistance, rather than direct antibiosis on leaves, explains the effect?

Integrated biological management of plant diseases using biopesticides Hard
A. Use a split-root system and challenge untreated leaves after localized root inoculation
B. Count bacterial colonies in the rhizosphere immediately after foliar inoculation
C. Measure pathogen growth on agar containing a concentrated bacterial culture
D. Compare disease after applying the bacterium and pathogen together on detached leaves

45 A foliar microbial biopesticide has a short residual period and performs best when applied before infection. Forecasting predicts two infection events seven days apart, while field data show effective antagonist populations persist for four days. Which schedule is most defensible?

Integrated biological management of plant diseases using biopesticides Hard
A. Apply once after the second event so both infections are treated curatively
B. Apply shortly before each event, subject to label restrictions and monitoring
C. Apply continuously at low dose regardless of weather or disease pressure
D. Apply once midway between events to maximize average population persistence

46 A bacteriophage preparation controls bacterial spot in one field but fails in another where symptoms appear identical. Which diagnostic result would most strongly explain the failure?

Integrated biological management of plant diseases using biopesticides Hard
A. The second field contains more nonpathogenic fungi on the lower leaf surface
B. The bacterial isolate from the second field lacks receptors used by the phage
C. The bacterial isolate from the second field grows more slowly on rich agar
D. The second field has lower leaf nitrogen than the successfully treated field

47 After repeated use of a single microbial biopesticide, pathogen suppression declines even though viable antagonist populations remain high. Pathogen isolates now tolerate the antagonist's principal antibiotic metabolite. Which response best supports durable integrated management?

Integrated biological management of plant diseases using biopesticides Hard
A. Increase application frequency while retaining the same antagonist and metabolite
B. Suspend sanitation so the antagonist encounters a larger pathogen population
C. Apply the antagonist only after disease severity exceeds the economic threshold
D. Combine compatible agents with different mechanisms and reduce primary inoculum

48 A siderophore-producing Pseudomonas biofertilizer suppresses a soilborne pathogen in iron-poor soil but loses efficacy after repeated iron-rich irrigation. Which mechanism best explains the change?

Integrated biological management of plant diseases using biofertilizers Hard
A. Added iron converts bacterial siderophores into broad-spectrum contact fungicides
B. Added iron forces the pathogen to depend entirely on bacterial nitrogen fixation
C. Added iron prevents all rhizobacteria from colonizing newly formed lateral roots
D. Added iron removes the competitive advantage created by microbial iron sequestration

49 A crop inoculated with arbuscular mycorrhizal fungi shows improved phosphorus uptake and reduced root disease under moderate phosphorus supply. At very high soluble phosphorus, both root colonization and disease suppression decline. What is the best interpretation?

Integrated biological management of plant diseases using biofertilizers Hard
A. High phosphorus suppresses symbiosis, reducing mycorrhiza-associated protection
B. High phosphorus strengthens symbiosis while preventing plant nutrient acquisition
C. High phosphorus directly converts the mycorrhizal fungus into a plant pathogen
D. High phosphorus eliminates pathogen inoculum but increases visible disease symptoms

50 A nitrogen-fixing biofertilizer increases canopy density in a crop susceptible to a humidity-favored foliar disease. Yield rises initially, but epidemics become more severe. Which adjustment best preserves integrated disease management?

Integrated biological management of plant diseases using biofertilizers Hard
A. Apply additional inoculum to maintain maximum leaf nitrogen throughout the season
B. Match nitrogen inputs to crop demand and modify canopy and irrigation management
C. Eliminate disease monitoring because biofertilizers function independently of microclimate
D. Maximize nitrogen fixation because greater canopy growth always dilutes disease severity

51 Researchers must determine whether disease suppression by a phosphate-solubilizing bacterium results from improved phosphorus nutrition or induced resistance. Which experimental design provides the strongest discrimination?

Integrated biological management of plant diseases using biofertilizers Hard
A. Compare pathogen growth on rich medium with growth on phosphorus-free medium
B. Compare inoculated plants with nutrient-matched controls and defense-marker measurements
C. Compare several bacterial doses while keeping the pathogen dose unmeasured
D. Compare inoculated plants with uninoculated plants receiving no phosphorus adjustment

52 A compost-based biofertilizer suppresses Rhizoctonia in one batch but increases disease in another. The second batch has a high carbon-to-nitrogen ratio, unstable temperature, and low microbial maturity. What is the most appropriate management conclusion?

Integrated biological management of plant diseases using biofertilizers Hard
A. Add pathogen inoculum to the second batch to stabilize microbial succession
B. Use the second batch because immature compost supports faster root colonization
C. Sterilize every compost batch because suppression never depends on living communities
D. Standardize maturity and biological quality before integrating compost into the program

53 A legume seed treatment contains an effective Rhizobium strain and a second bacterium intended to suppress root rot. Plants show reduced nodulation only when both organisms are applied together. What should be evaluated first?

Integrated biological management of plant diseases using biofertilizers Hard
A. Whether the suppressive bacterium inhibits Rhizobium survival or root signaling
B. Whether root rot symptoms can be scored without measuring either microbial population
C. Whether the pathogen has become dependent on nitrogen fixed inside mature nodules
D. Whether additional mineral nitrogen can permanently increase nodule initiation

54 A multispecies biofertilizer suppresses wilt in controlled soil but performs inconsistently across farms. Sequencing shows that different strains establish under acidic, neutral, and alkaline conditions. Which redesign is most likely to improve robustness?

Integrated biological management of plant diseases using biofertilizers Hard
A. Increase package size without measuring strain survival in representative soils
B. Remove all functionally redundant strains to ensure each mechanism occurs only once
C. Select strains only for maximum growth in a single nutrient-rich laboratory medium
D. Use compatible strains with overlapping functions across contrasting soil conditions

55 A biofertilizer improves plant biomass and lowers the percentage of diseased leaves, but the number of lesions per plant remains unchanged. Which additional metric is most important before claiming true disease suppression?

Integrated biological management of plant diseases using biofertilizers Hard
A. Average colony color of the inoculant on a nonselective medium
B. Absolute disease burden normalized to leaf area or total plant tissue
C. Percentage biomass increase measured only in pathogen-free plants
D. Total fertilizer mass applied without reference to viable propagules

56 A neem-based botanical pesticide controls a foliar pathogen in shaded trials but degrades rapidly under intense sunlight. Disease forecasting predicts overnight infection following evening leaf wetness. Which application timing is most rational?

Integrated biological management of plant diseases using botanical pesticides Hard
A. Apply at solar noon after the infection period to maximize ultraviolet exposure
B. Apply near sunset before the forecast infection period to reduce photodegradation
C. Apply during irrigation runoff so residues are rapidly removed from leaves
D. Apply after symptoms appear because neem products are exclusively curative

57 An essential-oil botanical strongly inhibits a fungal pathogen in vitro, but the effective concentration causes leaf necrosis in greenhouse tests. Which formulation strategy best addresses this limitation?

Integrated biological management of plant diseases using botanical pesticides Hard
A. Remove formulation emulsifiers and apply the undiluted oil to wet foliage
B. Measure inhibition only on agar and omit further whole-plant testing
C. Use controlled-release encapsulation and determine the crop selectivity window
D. Increase the free oil concentration so pathogen inhibition exceeds visible injury

58 A plant extract contains several antifungal compounds, but chemical profiling shows that one compound provides nearly all activity at the field dose. Which resistance-management conclusion is best supported?

Integrated biological management of plant diseases using botanical pesticides Hard
A. The extract should be applied continuously because chemical complexity guarantees durability
B. The extract should be treated as effectively single-site unless other active modes are verified
C. The extract cannot select pathogen variants because its components are biodegradable
D. The extract automatically prevents resistance because it originates from a plant

59 A botanical extract gives 95% inhibition of mycelial growth on agar but only 20% disease reduction in the field. Which explanation most directly accounts for this discrepancy?

Integrated biological management of plant diseases using botanical pesticides Hard
A. Botanical pesticides become biofertilizers whenever they are applied outside a laboratory
B. Weathering, plant-surface coverage, and host metabolism reduce effective exposure
C. Field pathogens cannot respond to compounds that inhibit them in pure culture
D. Agar inhibition proves that field disease assessments must be mathematically incorrect

60 A botanical contact fungicide is planned for use with a foliar yeast antagonist. A laboratory assay shows that fresh botanical residues sharply reduce yeast viability for 48 hours but not after 96 hours. What is the best field strategy?

Integrated biological management of plant diseases using botanical pesticides Hard
A. Apply the yeast first and immediately cover it with the botanical fungicide
B. Double both rates so each product compensates for the loss of the other
C. Tank-mix both products so the yeast metabolizes the active botanical compounds
D. Separate applications by a validated interval exceeding the toxic residue period