Unit 7: Arbuscular Mycorrhizal Fungi (AMF) - Practice Quiz

PTH215 — Biopesticides And Biofertilizers In Plant Disease Management 60 Questions
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1 Which method is commonly used to separate AMF spores from soil particles?

Isolation of arbuscular mycorrhizal fungi spores from soil samples Easy
A. Dry heating only
B. Paper chromatography
C. Leaf pressing
D. Wet sieving and decanting

2 What type of sample is usually collected for isolating AMF spores?

Isolation of arbuscular mycorrhizal fungi spores from soil samples Easy
A. Bark from mature stems
B. Air from the greenhouse
C. Soil from the plant root zone
D. Water from flower petals

3 What is the main purpose of adding water during the initial separation of soil samples?

Isolation of arbuscular mycorrhizal fungi spores from soil samples Easy
A. To suspend soil particles
B. To increase soil temperature
C. To kill all fungal spores
D. To dissolve the spore walls

4 Which tool is commonly used to collect individual AMF spores after sieving?

Isolation of arbuscular mycorrhizal fungi spores from soil samples Easy
A. Plant press
B. Large pruning saw
C. Fine forceps
D. Glass thermometer

5 Why are different sieve sizes used during AMF spore isolation?

Isolation of arbuscular mycorrhizal fungi spores from soil samples Easy
A. To change the spore color
B. To sterilize the soil completely
C. To separate particles by size
D. To measure root infection directly

6 Which solution is often used in density-gradient centrifugation to help recover AMF spores?

Isolation of arbuscular mycorrhizal fungi spores from soil samples Easy
A. Sucrose solution
B. Strong acid solution
C. Pure mineral oil
D. Concentrated bleach solution

7 What should be done with isolated AMF spores before microscopic identification?

Isolation of arbuscular mycorrhizal fungi spores from soil samples Easy
A. Mix them with dry sand
B. Place them in clean water
C. บด them into powder
D. Expose them to direct flame

8 Which feature is commonly examined when identifying AMF spores?

Identification of arbuscular mycorrhizal fungi spores from soil samples Easy
A. Flower fragrance
B. Leaf arrangement
C. Stem height
D. Spore color and shape

9 Which instrument is mainly used for observing AMF spore morphology?

Identification of arbuscular mycorrhizal fungi spores from soil samples Easy
A. pH electrode
B. Soil moisture meter
C. Compound microscope
D. Autoclave

10 What is a spore wall in an AMF spore?

Identification of arbuscular mycorrhizal fungi spores from soil samples Easy
A. The soil particle coating
B. The fungal feeding tube
C. The plant root surface
D. The outer protective covering

11 Which characteristic can help distinguish different AMF species?

Identification of arbuscular mycorrhizal fungi spores from soil samples Easy
A. Spore wall layers
B. Plant height alone
C. Soil color alone
D. Amount of rainfall alone

12 What does spore pigmentation refer to?

Identification of arbuscular mycorrhizal fungi spores from soil samples Easy
A. The length of the root
B. The weight of the soil
C. The acidity of the water
D. The color of the spore

13 Which structure may be observed at the point where an AMF hypha attaches to a spore?

Identification of arbuscular mycorrhizal fungi spores from soil samples Easy
A. A leaf vein
B. A root hair cap
C. A subtending hypha
D. A bacterial flagellum

14 Why are AMF spore identification keys used?

Identification of arbuscular mycorrhizal fungi spores from soil samples Easy
A. To count plant leaves
B. To produce fertilizer directly
C. To compare observed features
D. To increase soil moisture

15 Which observation is most useful for basic AMF spore identification?

Identification of arbuscular mycorrhizal fungi spores from soil samples Easy
A. Spore diameter under a microscope
B. Amount of fertilizer applied
C. Field size in hectares
D. Planting date only

16 What does AMF spore density usually mean?

Quantification of arbuscular mycorrhizal fungi spores from soil samples Easy
A. Number of spores per soil mass
B. Mass of fertilizer per plant
C. Number of roots per leaf
D. Length of hyphae per flower

17 If 60 AMF spores are found in 10 g of soil, what is the spore density?

Quantification of arbuscular mycorrhizal fungi spores from soil samples Easy
A. 6 spores/g
B. 600 spores/g
C. 10 spores/g
D. 50 spores/g

18 Which counting method is commonly used to estimate AMF spores in a sample?

Quantification of arbuscular mycorrhizal fungi spores from soil samples Easy
A. Recording air humidity
B. Measuring stem diameter
C. Counting under a microscope
D. Weighing plant leaves

19 Why should a known amount of soil be used for AMF spore counting?

Quantification of arbuscular mycorrhizal fungi spores from soil samples Easy
A. To calculate spore density
B. To increase fungal color
C. To change spore morphology
D. To prevent root growth

20 What is the main advantage of counting AMF spores in replicate soil samples?

Quantification of arbuscular mycorrhizal fungi spores from soil samples Easy
A. It improves reliability
B. It changes the species identity
C. It removes all soil nutrients
D. It prevents microscope use

21 During wet sieving and decanting, a soil suspension is allowed to settle briefly before the supernatant is poured through sieves. Why is the settling period kept short?

Isolation of arbuscular mycorrhizal fungi spores from soil samples Medium
A. To stimulate spore germination in suspension
B. To retain coarse mineral particles in the container
C. To sterilize the suspension before filtration
D. To dissolve organic matter before sieving

22 A researcher passes a soil suspension through sieves with openings of 500, 250, 100, and 45 . Which fractions should be examined to obtain the broadest recovery of AMF spores?

Isolation of arbuscular mycorrhizal fungi spores from soil samples Medium
A. The material retained on the 250, 100, and 45 sieves
B. Only the material retained on the 500 sieve
C. The sediment remaining in the original container after vigorous grinding
D. Only the filtrate passing through the 45 sieve

23 After wet sieving, the collected fraction contains many fine clay particles that obscure AMF spores. Which additional procedure is most appropriate?

Isolation of arbuscular mycorrhizal fungi spores from soil samples Medium
A. Sucrose-density centrifugation
B. Paraffin embedding
C. Acid hydrolysis
D. Dry-heat sterilization

24 Why should AMF spores recovered by sucrose centrifugation be rinsed promptly with water?

Isolation of arbuscular mycorrhizal fungi spores from soil samples Medium
A. To increase the density of viable spores
B. To harden the spore walls before mounting
C. To stain the subtending hypha uniformly
D. To remove sucrose that may cause osmotic damage

25 Two soil samples are being compared for AMF spore abundance. Which sampling procedure best supports a valid comparison?

Isolation of arbuscular mycorrhizal fungi spores from soil samples Medium
A. Air-dry one sample fully while processing the other immediately with its field moisture unchanged
B. Process equal wet weights regardless of moisture content
C. Process equal dry-weight equivalents from both samples
D. Use a larger soil mass for the sample with fewer visible roots

26 A compact clay soil forms persistent aggregates during wet sieving. What is the best initial adjustment for improving spore release without damaging spores?

Isolation of arbuscular mycorrhizal fungi spores from soil samples Medium
A. Add concentrated bleach until every aggregate is completely dissolved
B. Boil the soil before preparing the suspension
C. Grind the soil vigorously with a mortar
D. Soak and gently agitate the soil in water

27 Following centrifugation in a sucrose solution, where are intact AMF spores most commonly recovered?

Isolation of arbuscular mycorrhizal fungi spores from soil samples Medium
A. Inside the compact mineral pellet
B. Attached permanently to the tube wall
C. Dissolved within the aqueous phase
D. In the sucrose supernatant

28 Which combination of characters is most useful for morphological identification of an isolated AMF spore?

Identification of arbuscular mycorrhizal fungi spores from soil samples Medium
A. Soil color, soil pH, root length, and leaf area
B. Spore size, wall layers, color, and hyphal attachment
C. Host height, flowering time, seed weight, and chlorophyll content
D. Colony odor, aerial mycelium, pigment, and conidial chains

29 A spherical object recovered from soil has a smooth outline but no visible wall layers or hyphal attachment. What is the most appropriate conclusion?

Identification of arbuscular mycorrhizal fungi spores from soil samples Medium
A. It is certainly a mature AMF spore
B. Its identity as an AMF spore remains uncertain
C. It must be a root-derived vesicle
D. It is certainly a fungal sporocarp

30 Why are AMF spores commonly mounted in polyvinyl alcohol-lactic acid-glycerol with Melzer's reagent during identification?

Identification of arbuscular mycorrhizal fungi spores from soil samples Medium
A. To assess wall structure and diagnostic color reactions
B. To determine soil texture from mineral deposition
C. To culture the spores and measure colony growth
D. To dissolve every wall layer and expose the cytoplasm completely

31 A spore is gently crushed under a coverslip before microscopic examination. What feature becomes easier to evaluate?

Identification of arbuscular mycorrhizal fungi spores from soil samples Medium
A. The number and arrangement of wall layers
B. The total length of colonized host roots
C. The moisture content of the soil sample
D. The original distribution of spores in soil

32 Several isolated spores are pale, thin-walled, and lack clearly developed diagnostic structures. What is the most likely identification problem?

Identification of arbuscular mycorrhizal fungi spores from soil samples Medium
A. They may be immature spores
B. They have become bacterial endospores
C. They were transformed into mineral particles during centrifugation
D. They must belong to different species

33 Two AMF spores have similar color and diameter but differ in the structure of their subtending hyphae. How should this observation be used?

Identification of arbuscular mycorrhizal fungi spores from soil samples Medium
A. Identify both specimens exclusively from the crop species growing above the sampled soil
B. Ignore hyphal structure because only spore color is taxonomic
C. Combine the specimens because equal diameter proves they are identical
D. Treat hyphal structure as an additional diagnostic character

34 Which approach provides the strongest identification when an AMF specimen has ambiguous morphological characters?

Identification of arbuscular mycorrhizal fungi spores from soil samples Medium
A. Combine morphological observations with molecular analysis
B. Use spore color as the only identification criterion
C. Assign the specimen to the most common species reported from any agricultural soil
D. Infer the species solely from soil phosphorus concentration

35 A researcher counts 160 AMF spores in 80 g of dry soil. What is the spore density per 100 g of dry soil?

Quantification of arbuscular mycorrhizal fungi spores from soil samples Medium
A. 128 spores per 100 g
B. 200 spores per 100 g
C. 240 spores per 100 g
D. 160 spores per 100 g

36 Only one-quarter of a well-mixed spore suspension is examined, and 45 spores are counted. What is the estimated total number of spores in the suspension?

Quantification of arbuscular mycorrhizal fungi spores from soil samples Medium
A. 180 spores
B. 135 spores
C. 225 spores
D. 90 spores

37 Counts from four equal soil subsamples are 72, 80, 76, and 92 spores. What is the mean count per subsample?

Quantification of arbuscular mycorrhizal fungi spores from soil samples Medium
A. 76 spores
B. 82 spores
C. 80 spores
D. 88 spores

38 Sample X contains 120 spores in 50 g of dry soil, while Sample Y contains 180 spores in 100 g. Which sample has the greater standardized spore density?

Quantification of arbuscular mycorrhizal fungi spores from soil samples Medium
A. Both samples, with 200 spores per 100 g
B. Sample X, with 240 spores per 100 g
C. Sample Y, with 180 spores per 100 g
D. Sample Y, because its unstandardized total count is larger even though twice as much soil was processed

39 Repeated counts from the same homogenized soil sample vary widely. Which action would most directly improve the precision of the estimated mean spore density?

Quantification of arbuscular mycorrhizal fungi spores from soil samples Medium
A. Combine intact spores, broken wall fragments, roots, and mineral grains into one total category
B. Count more replicate subsamples
C. Use different soil masses without standardization
D. Report only the highest count

40 A 40 g field-moist soil sample contains 25% water by mass and yields 90 spores. What is the spore density per 100 g of dry soil?

Quantification of arbuscular mycorrhizal fungi spores from soil samples Medium
A. 270 spores per 100 g
B. 360 spores per 100 g
C. 300 spores per 100 g
D. 225 spores per 100 g

41 A soil sample contains many clay particles and organic debris, and the expected AMF spores range from 45 to 180 . Which isolation sequence is most appropriate for maximizing spore recovery while reducing debris?

Isolation of arbuscular mycorrhizal fungi spores from soil samples Hard
A. Wet sieving, decanting, sucrose centrifugation, and rinsing
B. Direct microscopy, grinding, filtration, and sedimentation
C. Dry sieving, boiling, staining, and sedimentation
D. Chemical digestion, dry heating, flotation, and staining

42 During wet sieving, a researcher discards the material retained on the largest sieve before examining it. Which important bias may result?

Isolation of arbuscular mycorrhizal fungi spores from soil samples Hard
A. Selective removal of only bacterial endospores
B. Conversion of viable spores into nonviable spores
C. Artificial increase in recovery of small AMF spores
D. Loss of unusually large AMF spores and sporocarps

43 A sample is processed by centrifugation in 60% sucrose, but the recovered spores are collapsed and difficult to identify. Which procedural change most directly addresses this problem?

Isolation of arbuscular mycorrhizal fungi spores from soil samples Hard
A. Shorten sucrose exposure and rinse spores immediately
B. Use a stronger acid and increase the temperature
C. Replace wet sieving with prolonged dry sieving
D. Increase centrifugation time and omit the rinse

44 Two soil samples have identical AMF abundance, but one contains substantially more clay. If both are processed using only wet sieving, what is the most likely outcome?

Isolation of arbuscular mycorrhizal fungi spores from soil samples Hard
A. The clay-rich sample will show lower apparent recovery
B. Both samples will have identical recovery efficiency
C. The clay-rich sample will produce larger spores
D. The clay-rich sample will show higher spore viability

45 A researcher wants to establish a trap culture from an AMF-containing soil but suspects that the native soil also contains plant pathogens. Which design best preserves the purpose of the culture while reducing pathogen carryover?

Isolation of arbuscular mycorrhizal fungi spores from soil samples Hard
A. Sterilize the inoculum soil completely and omit a host plant
B. Heat the entire soil sample until all biological activity is eliminated
C. Mix a small inoculum portion with sterilized substrate and use a suitable host
D. Use untreated field soil with a highly susceptible host

46 A sample is intended for both morphological identification and DNA-based confirmation. Which handling practice is most appropriate?

Isolation of arbuscular mycorrhizal fungi spores from soil samples Hard
A. Select representative spores and preserve separate aliquots
B. Stain every spore with a destructive dye before extraction
C. Dry the entire sample at high temperature before subsampling
D. Pool all spores immediately in formalin

47 A round, brown structure isolated from soil has a thick wall but no visible subtending hypha. Which conclusion is most defensible?

Identification of arbuscular mycorrhizal fungi spores from soil samples Hard
A. It should remain provisional until wall and attachment traits are assessed
B. It is definitively an AMF spore based on color alone
C. It must be a root fragment because it lacks a subtending hypha
D. It is definitively a bacterial endospore based on size alone

48 Which combination provides the strongest morphological evidence for distinguishing closely related AMF spore taxa?

Identification of arbuscular mycorrhizal fungi spores from soil samples Hard
A. Suspension turbidity, centrifuge speed, and sieve number
B. Spore color, soil pH, and sampling date
C. Wall-layer structure, subtending hypha, and ornamentation
D. Spore diameter, host species, and root biomass

49 A spore appears smooth in water but shows a laminated wall and a faint reaction in Melzer's reagent. Why should the water-based observation not be used alone for identification?

Identification of arbuscular mycorrhizal fungi spores from soil samples Hard
A. Mounting medium can alter visibility and chemical reactions
B. Smooth spores cannot belong to AMF
C. Melzer's reagent determines the host plant species
D. Water always dissolves AMF walls

50 Several isolated structures have similar diameters and colors, but some contain abundant lipid droplets while others are empty and granular. What is the best interpretation?

Identification of arbuscular mycorrhizal fungi spores from soil samples Hard
A. Contents may reflect maturity or damage and require supporting characters
B. Lipid droplets prove that every structure is a pathogenic fungus
C. All structures represent the same taxon at identical maturity
D. Empty spores are automatically excluded from all AMF analyses

51 A researcher identifies AMF solely from spores collected after trap culture with a single host. What limitation is most important?

Identification of arbuscular mycorrhizal fungi spores from soil samples Hard
A. Trap cultures can selectively amplify host-compatible AMF
B. Trap cultures eliminate all AMF wall characters
C. Single-host cultures prevent spores from forming
D. Host roots cannot support arbuscular fungi

52 An unknown spore has a persistent two-layered wall, a narrow subtending hypha, and surface ornamentation visible only after careful optical focusing. Which identification strategy is most reliable?

Identification of arbuscular mycorrhizal fungi spores from soil samples Hard
A. Discard it because ornamentation is not visible at low magnification
B. Classify it by the most common genus in the region
C. Compare all observed traits with an authoritative taxonomic description
D. Assign it to the genus using size alone

53 A 50 g soil sample yields 120 counted spores after extraction. The method recovers 80% of spores, and the researcher wants to report the estimated density per 100 g soil. What is the corrected density?

Quantification of arbuscular mycorrhizal fungi spores from soil samples Hard
A. spores per
B. spores per
C. spores per
D. spores per

54 A soil suspension is divided into four equal subsamples. The counted spore numbers are 18, 22, 20, and 40. Which summary best represents the data for a routine abundance estimate?

Quantification of arbuscular mycorrhizal fungi spores from soil samples Hard
A. Use the maximum count because it captures peak abundance
B. Use the arithmetic mean without examining sample variability
C. Investigate the high count and report variability with the estimate
D. Use the lowest count to avoid overestimating abundance

55 Two treatments produce mean spore densities of 100 and 150 spores per 100 g soil, but the second treatment has much greater extraction variability. Which conclusion is most justified?

Quantification of arbuscular mycorrhizal fungi spores from soil samples Hard
A. The first treatment is superior because lower variance always indicates efficacy
B. The second treatment is superior solely because its mean is higher
C. The treatments are identical because both contain AMF spores
D. The difference requires variability and replication to assess significance

56 A counting dish contains many spores concentrated along the edge of the grid. Which procedural adjustment most improves the validity of the count?

Quantification of arbuscular mycorrhizal fungi spores from soil samples Hard
A. Count only the edge because spores are easier to see there
B. Increase the microscope magnification without mixing
C. Count the same edge repeatedly and average the results
D. Redisperse the suspension and standardize mixing before subsampling

57 A study reports 85 AMF spores per 100 g soil, but the authors used 10 g of soil from one composite sample and made no recovery correction. Which limitation most directly affects interpretation?

Quantification of arbuscular mycorrhizal fungi spores from soil samples Hard
A. The estimate may have low precision and may underestimate true abundance
B. The reported value cannot be compared with any biological measurement
C. Recovery correction is unnecessary when spores are counted microscopically
D. The use of a composite sample guarantees complete accuracy

58 A researcher counts intact, crushed, and empty AMF spores together when comparing treatments. What is the main interpretive problem?

Quantification of arbuscular mycorrhizal fungi spores from soil samples Hard
A. Including intact spores invalidates all statistical analyses
B. The count measures total recovered structures rather than a consistent biological category
C. Empty spores are always more infective than intact spores
D. Crushed spores cannot be recovered by any extraction method

59 A treatment increases spore counts but decreases root colonization in the same experiment. Which explanation is most scientifically defensible?

Quantification of arbuscular mycorrhizal fungi spores from soil samples Hard
A. More spores necessarily prove greater functional mycorrhizal activity
B. Sporulation and colonization can be temporally or functionally decoupled
C. The spore counts must be correct because colonization is irrelevant
D. Spore abundance and root colonization are identical measurements

60 A laboratory compares AMF spore densities across soils with different moisture contents but reports values only on a wet-mass basis. Why is this comparison potentially biased?

Quantification of arbuscular mycorrhizal fungi spores from soil samples Hard
A. Moisture content changes the genetic identity of spores
B. Dry-mass normalization destroys all spore morphology
C. Water contributes variable mass unrelated to the soil's dry material
D. Wet soil contains no measurable spores