Unit 5: Plant growth regulators - Practice Quiz

BTY559 — Biotechnology Laboratory-Ii 60 Questions
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1 Which two classes of plant growth regulators are most commonly used to control organogenesis in tissue culture?

effect of plant growth regulators on organogenesis (in vitro shooting and rooting) Easy
A. Gibberellins and ethylene
B. Auxins and cytokinins
C. Salicylic acid and jasmonic acid
D. Abscisic acid and ethylene

2 A high cytokinin to auxin ratio in the culture medium generally promotes which type of organ formation?

effect of plant growth regulators on organogenesis (in vitro shooting and rooting) Easy
A. Flower formation
B. Shoot formation
C. Callus proliferation only
D. Root formation

3 A high auxin to cytokinin ratio in the culture medium generally promotes which type of organ formation?

effect of plant growth regulators on organogenesis (in vitro shooting and rooting) Easy
A. Leaf formation
B. Seed formation
C. Shoot formation
D. Root formation

4 Which of the following is a commonly used auxin in plant tissue culture?

effect of plant growth regulators on organogenesis (in vitro shooting and rooting) Easy
A. IAA (Indole-3-acetic acid)
B. BAP (6-Benzylaminopurine)
C. Zeatin
D. Kinetin

5 Which of the following is a commonly used cytokinin in plant tissue culture?

effect of plant growth regulators on organogenesis (in vitro shooting and rooting) Easy
A. IBA (Indole-3-butyric acid)
B. 2,4-D
C. NAA (Naphthaleneacetic acid)
D. BAP (6-Benzylaminopurine)

6 The classic concept that the auxin-cytokinin ratio controls organ formation was demonstrated by which researchers?

effect of plant growth regulators on organogenesis (in vitro shooting and rooting) Easy
A. Murashige and Skoog
B. Went and Thimann
C. Skoog and Miller
D. Watson and Crick

7 The formation of organs such as shoots and roots from cultured plant tissues is called:

effect of plant growth regulators on organogenesis (in vitro shooting and rooting) Easy
A. Germination
B. Fertilization
C. Photosynthesis
D. Organogenesis

8 Which auxin is particularly favoured for inducing rooting in micropropagated shoots?

effect of plant growth regulators on organogenesis (in vitro shooting and rooting) Easy
A. IBA (Indole-3-butyric acid)
B. Gibberellic acid
C. Kinetin
D. BAP (6-Benzylaminopurine)

9 When auxin and cytokinin are supplied in nearly equal (balanced) amounts, the tissue typically forms:

effect of plant growth regulators on organogenesis (in vitro shooting and rooting) Easy
A. Undifferentiated callus
B. Mature flowers
C. Only roots
D. Only shoots

10 The process of producing new shoots from an explant in culture is commonly referred to as:

effect of plant growth regulators on organogenesis (in vitro shooting and rooting) Easy
A. In vitro shooting
B. Protoplast fusion
C. Somatic embryogenesis
D. In vitro rooting

11 Which plant growth regulator primarily promotes cell division and shoot bud formation?

effect of plant growth regulators on organogenesis (in vitro shooting and rooting) Easy
A. Ethylene
B. Auxin
C. Cytokinin
D. Abscisic acid

12 Which plant growth regulator primarily promotes cell elongation and root initiation?

effect of plant growth regulators on organogenesis (in vitro shooting and rooting) Easy
A. Gibberellin
B. Ethylene
C. Cytokinin
D. Auxin

13 Which of the following is a synthetic auxin commonly used to induce callus in tissue culture?

effect of plant growth regulators on organogenesis (in vitro shooting and rooting) Easy
A. BAP (6-Benzylaminopurine)
B. Zeatin
C. Kinetin
D. 2,4-D (2,4-Dichlorophenoxyacetic acid)

14 For successful in vitro rooting of micropropagated shoots, the medium is usually supplemented with:

effect of plant growth regulators on organogenesis (in vitro shooting and rooting) Easy
A. Auxin
B. Cytokinin
C. Abscisic acid
D. Gibberellin

15 Kinetin is best classified as which type of plant growth regulator?

effect of plant growth regulators on organogenesis (in vitro shooting and rooting) Easy
A. Gibberellin
B. Ethylene
C. Cytokinin
D. Auxin

16 NAA (Naphthaleneacetic acid) belongs to which class of plant growth regulators?

effect of plant growth regulators on organogenesis (in vitro shooting and rooting) Easy
A. Auxin
B. Cytokinin
C. Abscisic acid
D. Gibberellin

17 If cultured tissue produces only roots and no shoots, the medium most likely contains:

effect of plant growth regulators on organogenesis (in vitro shooting and rooting) Easy
A. A high proportion of cytokinin relative to auxin
B. Neither auxin nor cytokinin at all
C. Equal amounts of auxin and cytokinin
D. A high proportion of auxin relative to cytokinin

18 Zeatin is naturally occurring plant growth regulator classified as a:

effect of plant growth regulators on organogenesis (in vitro shooting and rooting) Easy
A. Gibberellin
B. Cytokinin
C. Ethylene
D. Auxin

19 The multiplication of shoots to obtain many plantlets from a single explant is generally achieved by using media rich in:

effect of plant growth regulators on organogenesis (in vitro shooting and rooting) Easy
A. Ethylene
B. Auxins
C. Cytokinins
D. Abscisic acid

20 In tissue culture, after shoots are formed and elongated, the next stage before transferring plantlets to soil is:

effect of plant growth regulators on organogenesis (in vitro shooting and rooting) Easy
A. Callus induction
B. In vitro rooting
C. Protoplast isolation
D. Shoot multiplication

21 A tissue culture technician wants to induce shoot proliferation from callus. Which auxin-to-cytokinin ratio in the medium would most likely favor this outcome?

effect of plant growth regulators on organogenesis (in vitro shooting and rooting) Medium
A. No growth regulators added
B. High auxin : low cytokinin
C. Equal auxin and cytokinin
D. Low auxin : high cytokinin

22 In vitro rooting of microshoots is typically induced by transferring them to a medium containing which class of regulator?

effect of plant growth regulators on organogenesis (in vitro shooting and rooting) Medium
A. Gibberellins such as
B. Abscisic acid
C. Auxins such as IBA or NAA
D. Cytokinins such as BAP

23 A culture given a very high cytokinin concentration produces numerous shoots that fail to elongate and appear stunted. What is the most likely reason?

effect of plant growth regulators on organogenesis (in vitro shooting and rooting) Medium
A. The medium lacks a carbon source
B. Excess cytokinin suppresses shoot elongation
C. Gibberellin overdose inhibited buds
D. Auxin has completely degraded

24 Which regulator is commonly added to promote shoot elongation after multiplication when shoots remain too short?

effect of plant growth regulators on organogenesis (in vitro shooting and rooting) Medium
A. Abscisic acid
B. 2,4-D
C. IBA
D. (gibberellic acid)

25 A researcher uses 2,4-D at high concentration during initiation. Which developmental outcome is most expected?

effect of plant growth regulators on organogenesis (in vitro shooting and rooting) Medium
A. Flower induction
B. Callus proliferation
C. Direct shoot formation
D. Immediate root elongation

26 During micropropagation, why are microshoots often transferred to a fresh medium with reduced or no cytokinin before rooting?

effect of plant growth regulators on organogenesis (in vitro shooting and rooting) Medium
A. Cytokinin degrades sucrose
B. Cytokinin inhibits root initiation
C. Cytokinin causes vitrification only
D. Cytokinin blocks photosynthesis

27 Which combination is most appropriate for inducing multiple shoots directly from a nodal explant?

effect of plant growth regulators on organogenesis (in vitro shooting and rooting) Medium
A. IBA with no cytokinin
B. 2,4-D alone at high level
C. BAP with a low level of NAA
D. alone

28 A student observes that shoots rooted well on auxin-containing medium but the roots are thick, short, and callused at the base. What is the most likely cause?

effect of plant growth regulators on organogenesis (in vitro shooting and rooting) Medium
A. Sucrose was omitted
B. Light intensity was too low
C. Cytokinin was accidentally added
D. Auxin concentration was too high

29 Which of the following best explains why IBA is often preferred over IAA for in vitro rooting?

effect of plant growth regulators on organogenesis (in vitro shooting and rooting) Medium
A. IBA is a cytokinin
B. IBA degrades faster than IAA
C. IBA promotes shoot growth
D. IBA is more chemically stable in culture

30 In the Skoog–Miller model of organogenesis, an intermediate auxin-to-cytokinin balance typically results in what?

effect of plant growth regulators on organogenesis (in vitro shooting and rooting) Medium
A. Undifferentiated callus growth
B. Only root formation
C. Complete plantlet with no callus
D. Only shoot formation

31 A protocol calls for a two-step rooting: a short pulse on high-auxin medium followed by transfer to auxin-free medium. Why is this done?

effect of plant growth regulators on organogenesis (in vitro shooting and rooting) Medium
A. Auxin is needed for root initiation but can inhibit later elongation
B. Auxin must be present throughout for elongation
C. Auxin replaces sucrose during rooting
D. Auxin prevents contamination

32 Which regulator combination would you expect to give the poorest shoot regeneration from callus?

effect of plant growth regulators on organogenesis (in vitro shooting and rooting) Medium
A. Moderate cytokinin with trace auxin
B. High cytokinin with low auxin
C. Cytokinin with a pinch of
D. High auxin with negligible cytokinin

33 A hyperhydric (vitrified), glassy, water-soaked appearance of in vitro shoots is often linked to which regulator condition?

effect of plant growth regulators on organogenesis (in vitro shooting and rooting) Medium
A. Complete absence of sucrose
B. High gibberellin only
C. Low agar with high auxin
D. Excessively high cytokinin levels

34 For difficult-to-root woody species, which strategy involving regulators is often used?

effect of plant growth regulators on organogenesis (in vitro shooting and rooting) Medium
A. Removing sucrose entirely
B. Increasing concentration
C. Adding more cytokinin
D. Higher IBA or a longer auxin pulse

35 Which observation would indicate that the cytokinin level in a multiplication medium is optimal rather than excessive?

effect of plant growth regulators on organogenesis (in vitro shooting and rooting) Medium
A. Multiple healthy elongating shoots
B. Glassy translucent shoots
C. Only root formation
D. Dense stunted non-elongating clusters

36 Adventitious shoot regeneration directly from a leaf explant (without callus) is best promoted by which condition?

effect of plant growth regulators on organogenesis (in vitro shooting and rooting) Medium
A. 2,4-D-dominant medium
B. Regulator-free medium
C. Cytokinin-dominant medium with minimal auxin
D. Auxin-only medium

37 TDZ (thidiazuron) is sometimes used in shoot regeneration protocols primarily because it has what type of activity?

effect of plant growth regulators on organogenesis (in vitro shooting and rooting) Medium
A. Abscisic acid activity
B. Gibberellin activity
C. Strong auxin activity
D. Strong cytokinin-like activity

38 If shoots are transferred to a rooting medium but no roots form even after weeks, which adjustment is most logical to try first?

effect of plant growth regulators on organogenesis (in vitro shooting and rooting) Medium
A. Increase the auxin concentration
B. Increase the cytokinin concentration
C. Add
D. Remove the carbon source

39 Which statement correctly describes the general roles of auxin and cytokinin in organogenesis?

effect of plant growth regulators on organogenesis (in vitro shooting and rooting) Medium
A. Both only promote callus
B. Both only promote roots
C. Auxin promotes shoots; cytokinin promotes roots
D. Cytokinin promotes shoots; auxin promotes roots

40 A plantlet with well-developed shoots but poor roots is unlikely to survive acclimatization. Which culture-stage error most likely caused the poor rooting?

effect of plant growth regulators on organogenesis (in vitro shooting and rooting) Medium
A. Cytokinin was not reduced before the rooting stage
B. Sucrose was too high during rooting
C. Light was too intense during shooting
D. Too much auxin was used at multiplication

41 In Skoog and Miller's classic model of organogenesis, a callus cultured on a medium with a high auxin-to-cytokinin ratio is most likely to undergo which morphogenic response?

effect of plant growth regulators on organogenesis (in vitro shooting and rooting) Hard
A. Shoot bud formation (caulogenesis)
B. Somatic embryogenesis
C. Callus proliferation without organogenesis
D. Root formation (rhizogenesis)

42 A researcher obtains excellent shoot multiplication using BAP but observes severe hyperhydricity (vitrification) in the shoots. Which modification is the most rational first step to reduce hyperhydricity while retaining organogenic response?

effect of plant growth regulators on organogenesis (in vitro shooting and rooting) Hard
A. Add high concentrations of auxin to counteract cytokinin
B. Increase cytokinin concentration to force normal shoots
C. Increase the sucrose concentration to
D. Reduce cytokinin concentration and increase agar/gelling agent concentration

43 During in vitro rooting, auxin is often required only for the initial induction phase and can inhibit later root elongation. Which two-step protocol best exploits this biphasic auxin requirement?

effect of plant growth regulators on organogenesis (in vitro shooting and rooting) Hard
A. Short exposure to high auxin, then transfer to auxin-free medium
B. Auxin-free induction, then high auxin for elongation
C. Continuous cytokinin followed by auxin pulse
D. Continuous high auxin throughout the rooting period

44 Why is IBA generally preferred over IAA for in vitro root induction in many species?

effect of plant growth regulators on organogenesis (in vitro shooting and rooting) Hard
A. IBA is more chemically stable and less susceptible to photodegradation and IAA-oxidase breakdown
B. IBA is water-soluble whereas IAA is not
C. IBA is a natural cytokinin that stimulates root meristems
D. IBA has no ability to induce callus, unlike IAA

45 A callus fails to form shoots even at high cytokinin levels but readily forms roots. The most likely explanation involving endogenous hormones is:

effect of plant growth regulators on organogenesis (in vitro shooting and rooting) Hard
A. Complete absence of endogenous cytokinin receptors
B. Loss of totipotency in all callus cells
C. Excess endogenous gibberellin blocking all organogenesis
D. High endogenous auxin content keeping the effective auxin:cytokinin ratio elevated

46 TDZ (thidiazuron) is frequently used for shoot regeneration in recalcitrant woody species. A common drawback of using TDZ that must be managed is:

effect of plant growth regulators on organogenesis (in vitro shooting and rooting) Hard
A. It has extremely weak cytokinin activity requiring very high doses
B. It only induces roots and never shoots
C. It rapidly degrades and must be re-added daily
D. It causes fasciation and inhibits subsequent shoot elongation and rooting due to its strong, persistent activity

47 In direct organogenesis versus indirect organogenesis, which statement about the PGR regime and somaclonal variation is correct?

effect of plant growth regulators on organogenesis (in vitro shooting and rooting) Hard
A. Indirect organogenesis eliminates somaclonal variation entirely
B. Both pathways carry identical variation risk regardless of PGRs
C. Direct organogenesis uses 2,4-D and gives the highest somaclonal variation
D. Indirect organogenesis via callus, often driven by strong auxins like 2,4-D, carries a higher risk of somaclonal variation

48 The synthetic auxin 2,4-D is powerful for callus induction but is usually avoided during shoot regeneration because:

effect of plant growth regulators on organogenesis (in vitro shooting and rooting) Hard
A. It degrades all endogenous cytokinins in the tissue
B. It is a cytokinin antagonist that kills meristems
C. It selectively induces only roots at all concentrations
D. Its strong, persistent auxin action suppresses shoot bud organization and promotes disorganized callus growth

49 A protocol reports shoot regeneration frequency . Out of 48 explants, 36 form shoots, giving what regeneration frequency?

effect of plant growth regulators on organogenesis (in vitro shooting and rooting) Hard
A.
B.
C.
D.

50 Gibberellic acid (GA) is sometimes added after shoot induction. Its most appropriate role in an organogenesis sequence is to:

effect of plant growth regulators on organogenesis (in vitro shooting and rooting) Hard
A. Stimulate root primordia formation
B. Induce shoot bud initiation from callus
C. Break cytokinin-induced apical dominance loss
D. Promote elongation of short, rosette-like regenerated shoots for easier excision

51 In many microshoots, adding activated charcoal to the rooting medium improves root formation primarily because it:

effect of plant growth regulators on organogenesis (in vitro shooting and rooting) Hard
A. Provides carbon nutrition that fuels root growth
B. Raises the medium pH to favor rhizogenesis
C. Adsorbs inhibitory phenolics and excess/residual PGRs, and creates a dark, low-hormone rhizosphere
D. Releases auxin slowly to boost rooting

52 A microshoot line roots poorly even with high IBA. Genetic analysis shows adequate auxin transport. The most plausible physiological cause and remedy is:

effect of plant growth regulators on organogenesis (in vitro shooting and rooting) Hard
A. Residual cytokinin carried over from the multiplication stage; add a cytokinin-free 'washout' subculture before rooting
B. Insufficient sucrose; increase to
C. Excess light intensity; move to complete darkness permanently
D. Too little cytokinin in rooting medium; add BAP

53 Which combination correctly matches the PGR-controlled morphogenic outcome according to the auxin:cytokinin (A:C) ratio concept?

effect of plant growth regulators on organogenesis (in vitro shooting and rooting) Hard
A. High A:C → callus; Low A:C → roots; Intermediate A:C → shoots
B. High A:C → roots; Low A:C → shoots; Intermediate A:C → callus
C. High A:C → embryos; Low A:C → callus; Intermediate A:C → roots
D. High A:C → shoots; Low A:C → roots; Intermediate A:C → embryos

54 Ethylene often accumulates in sealed culture vessels during organogenesis. Its typical effect and a common mitigation are:

effect of plant growth regulators on organogenesis (in vitro shooting and rooting) Hard
A. It always promotes shoot regeneration; it should be enriched in the vessel
B. It only affects rooting and never shooting
C. It can inhibit shoot regeneration; adding silver nitrate (AgNO) or improving vessel gas exchange counteracts it
D. It converts cytokinin to auxin, so it must be removed with charcoal

55 When comparing kinetin, BAP, and zeatin for shoot induction, a key practical reason BAP is most commonly chosen is:

effect of plant growth regulators on organogenesis (in vitro shooting and rooting) Hard
A. It uniquely prevents all hyperhydricity
B. It doubles as a rooting auxin at low doses
C. It is the only natural cytokinin among the three
D. It is a stable, inexpensive, and highly effective synthetic cytokinin for shoot multiplication

56 A dose-response study shows shoot number rising with BAP up to mg/L, then declining at mg/L with abnormal, stunted shoots. This pattern best illustrates:

effect of plant growth regulators on organogenesis (in vitro shooting and rooting) Hard
A. A supra-optimal (inhibitory) cytokinin concentration beyond the optimum
B. That BAP has no effect on shoot number
C. An auxin-like response of BAP at high concentration
D. Complete loss of totipotency at all doses

57 In monocots (e.g., cereals) that are recalcitrant to organogenesis, 2,4-D is used to induce embryogenic callus, but shoot regeneration requires switching PGRs. The correct rationale is:

effect of plant growth regulators on organogenesis (in vitro shooting and rooting) Hard
A. Shoot regeneration in monocots does not require any PGR change
B. Cytokinins are toxic to monocot callus and must be avoided
C. 2,4-D maintains dedifferentiated/embryogenic callus; regeneration needs its removal and a shift to cytokinin-favored medium
D. 2,4-D directly induces shoots and roots simultaneously in monocots

58 Some easy-to-root species form roots on PGR-free (basal) medium. The best explanation is:

effect of plant growth regulators on organogenesis (in vitro shooting and rooting) Hard
A. Cytokinin in the medium is converted to auxin
B. Sucrose acts as an auxin substitute in these species
C. Their endogenous auxin levels alone are sufficient to reach the threshold needed for root induction
D. Basal medium contains hidden synthetic auxins

59 A lab needs to convert mg of a stock to prepare L of medium at mg/L NAA from a mg/mL NAA stock solution. What volume of stock is required?

effect of plant growth regulators on organogenesis (in vitro shooting and rooting) Hard
A. mL
B. mL
C. mL
D. mL

60 During acclimatization, in vitro rooted plantlets often show poor survival despite good root systems formed under high auxin. A PGR-related contributing factor is:

effect of plant growth regulators on organogenesis (in vitro shooting and rooting) Hard
A. Cytokinin residues make roots absorb too much water
B. Roots formed in vitro are always genetically abnormal
C. Auxin-induced roots may lack functional vascular connection and root hairs, reducing water uptake ex vitro
D. High auxin permanently sterilizes the roots