Many plants flower in response to day-length cues. Which of the following statements best summarizes this phenomenon?

Many plants flower in response to day-length cues. Which of the following statements best summarizes this phenomenon? 






A) As a rule, short-day plants flower in the summer.
B) As a rule, long-day plants flower in the spring or fall.
C) Long-day plants flower in response to long days, not short nights.
D) Flowering in day-neutral plants is only influenced by day length if there is an exceptionally warm spring.
E) Flowering in short-day and long-day plants is controlled by phytochrome.







Answer: E

A short-day plant will flower only when

A short-day plant will flower only when 





A) days are shorter than nights.
B) days are shorter than a certain critical value.
C) nights are shorter than a certain critical value.
D) nights are longer than a certain critical value.
E) days and nights are of equal length.







Answer: D

Seed packets give a recommended planting depth for the enclosed seeds. The most likely reason some seeds are to be covered with only 1/4 inch of soil is that the

Seed packets give a recommended planting depth for the enclosed seeds. The most likely reason some seeds are to be covered with only 1/4 inch of soil is that the 







A) seedlings do not produce a hypocotyl.
B) seedlings do not have an etiolation response.
C) seeds require light to germinate.
D) seeds require a higher temperature to germinate.
E) seeds are very sensitive to waterlogging.







Answer: C

Why are lateral buds often inhibited from sprouting even though a stem may be actively elongating?

Why are lateral buds often inhibited from sprouting even though a stem may be actively elongating? 





A) The cells of lateral buds are more sensitive to auxin than stem cells.
B) Lateral buds are high in abscisic acid that prevents elongation.
C) Lateral buds are low in gibberellins.
D) Stem cells lack receptors for auxin.
E) Stem cells can overcome auxin inhibition with high levels of gibberellins.






Answer: A

Experiments on the positive phototropic response of plants indicate that

Experiments on the positive phototropic response of plants indicate that 





A) light destroys auxin.
B) auxin moves down the plant apoplastically.
C) auxin is synthesized in the area where the stem bends.
D) auxin can move to the shady side of the stem.
E) auxin is only of secondary importance in the process.






Answer: D

We tend to think of plants as immobile when, in fact, they can move in many ways. Which of the following is a legitimate way in which plants move?

We tend to think of plants as immobile when, in fact, they can move in many ways. Which of the following is a legitimate way in which plants move? 




A) stretching or shrinking movements up or down in response to light
B) folding and unfolding of leaves using muscle-like tissues
C) growth movements toward or away from light
D) cessation of plant growth in response to wind or touch
E) rapid responses using action potentials from nervous tissue cells similar to those found in the nervous tissue of animals






Answer: C

Which of the following field treatments would be most likely to result in a wheat or corn field with most of the plants of uniform height?

Which of the following field treatments would be most likely to result in a wheat or corn field with most of the plants of uniform height? 





A) auxin spray early in the season
B) gibberellin spray early in the season
C) abscisic acid spray late in the season
D) auxin spray late in the season
E) auxin and gibberellin spray late in the season






Answer: C

According to the acid growth hypothesis, auxin works by

According to the acid growth hypothesis, auxin works by 






A) dissolving sieve plates, permitting more rapid transport of nutrients.
B) dissolving the cell membranes temporarily, permitting cells that were on the verge of dividing to divide more rapidly.
C) changing the pH within the cell, which would permit the electron transport chain to operate more efficiently.
D) increasing wall plasticity and allowing the affected cell walls to elongate.
E) greatly increasing the rate of deposition of cell wall material.







Answer: D

Which of the following statements best summarizes the acid growth hypothesis in an actively growing shoot?

Which of the following statements best summarizes the acid growth hypothesis in an actively growing shoot? 






A) Auxin stimulates proton pumps in the plasma membrane and tonoplast.
B) Auxin-activated proton pumps lower the pH of the cell wall, which breaks bonds and makes the walls more flexible
C) Auxins and gibberellins together act as a lubricant to help stretch cellulose microfibrils.
D) Auxins activate aquaporins that increase turgor pressure in the cells.
E) Auxins and gibberellins are transported to the vacuoles to build up turgor pressure.






Answer: B

Auxin triggers the acidification of cell walls, which results in rapid growth, but also stimulates sustained, long-term cell elongation. What best explains how auxin brings about this dual growth response?

Auxin triggers the acidification of cell walls, which results in rapid growth, but also stimulates sustained, long-term cell elongation. What best explains how auxin brings about this dual growth response? 





A) Auxin binds to different receptors in different cells.
B) Different concentrations of auxin have different effects.
C) Auxin causes second messengers to activate both proton pumps on the plasma membrane and certain genes within the same cells.
D) The dual effects are due to two different types of auxins that are produced by different genes.
E) Other antagonistic hormones modify auxin's effects.







Answer: C

Oat seedlings are sometimes used to study auxins because

Oat seedlings are sometimes used to study auxins because 






A) they are a readily accessible monocot, and auxins affect only monocots.
B) they have a stiff coleoptile.
C) they green rapidly in the light.
D) their coleoptile exhibits a strong positive phototropism.
E) monocots inactivate synthetic auxins.







Answer: D

How does indoleacetic acid affect fruit development?

How does indoleacetic acid affect fruit development? 






A) by preventing pollination
B) by inhibiting formation of the ovule
C) by promoting gene expression in cambial tissue
D) by promoting rapid growth of the ovary
E) by inducing the formation of brassinosteroids






Answer: D

Plant hormones can have different effects at different concentrations. This explains how

Plant hormones can have different effects at different concentrations. This explains how 





A) some plants are long-day plants and others are short-day plants.
B) signal transduction pathways in plants are different from those in animals.
C) plant genes recognize pathogen genes.
D) auxin can stimulate cell elongation in apical meristems, yet will inhibit the growth of axillary buds.
E) gibberellin concentration can both induce and break dormancy.






Answer: D

Why might animal hormones function differently than plant hormones?

Why might animal hormones function differently than plant hormones? 






A) Animal receptors are very different than plant receptors.
B) Plant cells have a cell wall that blocks passage of many hormones.
C) Plants must have more precise timing of their reproductive activities.
D) Plants are much more variable in their morphology and development than animals.
E) Animal receptors are more hydrophobic than plant receptors.






Answer: D

Plant hormones produce their effects by

Plant hormones produce their effects by 





A) altering the expression of genes.
B) modifying the permeability of the plasma membrane.
C) modifying the structure of the nuclear envelope membrane.
D) altering the expression of genes and modifying the permeability of the plasma membrane.
E) modifying the permeability of the plasma membrane and modifying the structure of the nuclear envelope membrane.








Answer: D

Which of the following statements applies to plant growth regulators?

Which of the following statements applies to plant growth regulators? 






A) They only act by altering gene expression.
B) They often have a multiplicity of effects.
C) They function independently of other hormones.
D) They directly control plant protein synthesis and assembly.
E) They affect the division and elongation, but not the differentiation, of cells.






Answer: B

Why do coleoptiles grow toward light?

Why do coleoptiles grow toward light? 




A) Auxin is destroyed by light.
B) Gibberellins are destroyed by light.
C) Auxin synthesis is stimulated in the dark.
D) Auxin moves away from the light to the shady side.
E) Gibberellins move away from the light to the shady side.





Answer: D

Which of the following plant hormones would be found in very low amounts in a mature, water-stressed tomato plant?

Which of the following plant hormones would be found in very low amounts in a mature, water-stressed tomato plant? 






A) auxins, abscisic acid, brassinosteroids
B) auxins, gibberellins, cytokinins
C) gibberellins, cytokinins, ethylene
D) phytochrome, cytokinins, abscisic acid
E) brassinosteroids, ethylene, phytochrome






Answer: B

Gravitropism in plant shoots and roots differ in that

Gravitropism in plant shoots and roots differ in that 






A) only shoots depend upon auxin distribution.
B) only shoots depend upon the aggregation of statoliths.
C) only roots exhibit rapid elongation of specific cells.
D) only roots sense gravity at the tips.
E) the threshold and response time is much less in shoots than in roots.








Answer: E

After some time, the tip of a plant that has been forced into a horizontal position grows upward. This phenomenon is related to

After some time, the tip of a plant that has been forced into a horizontal position grows upward. This phenomenon is related to 






A) calcium release from the endoplasmic reticulum of shaded cells.
B) whether the plant is in the northern or southern hemisphere.
C) gibberellin production by stems.
D) auxin production in cells receiving red light.
E) auxin movement toward the lower side of the stem.




Answer: E

A plant seedling bends toward sunlight because

A plant seedling bends toward sunlight because 





A) auxin migrates to the lower part of the stem due to gravity.
B) there is more auxin on the light side of the stem.
C) auxin is destroyed more quickly on the dark side of the stem.
D) auxin is found in greatest abundance on the dark side of the stem.
E) gibberellins produced at the stem tip cause phototropism.







Answer: D

According to modern ideas about phototropism in plants,

According to modern ideas about phototropism in plants, 





A) light causes auxin to accumulate on the shaded side of a plant stem.
B) auxin indirectly inhibits elongation of plant stem cells.
C) auxin is produced by the apical meristem of the coleoptile and moves downward.
D) all hormones move downward via the xylem.
E) cytokinins are more directly involved than auxins.





Answer: A

Evidence for phototropism due to the asymmetric distribution of auxin moving down the stem

Evidence for phototropism due to the asymmetric distribution of auxin moving down the stem 






A) was first demonstrated in the coleoptiles of monocots.
B) has been found in all monocots and most eudicots.
C) has been shown to involve only IAA stimulation of cell elongation on the dark side of the stem.
D) can be demonstrated with unilateral red light, but not blue light.
E) is now thought by most plant scientists not to involve the shoot tip.






Answer: A

Which of the following is a major mechanism whereby hormones control plant development?

Which of the following is a major mechanism whereby hormones control plant development? 





A) cell respiration via regulation of the citric acid cycle
B) cell division via the cell cycle
C) cell elongation through production of cellulase
D) cell differentiation through altered spliceosome activity
E) cell synthesis of proteins via altered gene expression






Answer: B

We know from the experiments of the past that plants bend toward light because

We know from the experiments of the past that plants bend toward light because 







A) they need sunlight energy for photosynthesis.
B) the sun stimulates stem growth.
C) cell expansion is greater on the dark side of the stem.
D) auxin is inactive on the dark side of the stem.
E) phytochrome stimulates florigen production.






Answer: C

Which of the following conclusions is supported by the research of both Went and Charles and Francis Darwin on shoot responses to light?

Which of the following conclusions is supported by the research of both Went and Charles and Francis Darwin on shoot responses to light? 





A) When shoots are exposed to light, a chemical substance migrates toward the light.
B) Agar contains a chemical substance that mimics a plant hormone.
C) A chemical substance involved in shoot bending is produced in shoot tips.
D) Once shoot tips have been cut, normal growth cannot be induced.
E) Light stimulates the synthesis of a plant hormone that responds to light.




Answer: C

Plants growing in a partially dark environment will grow toward light in a response called phototropism. Which of the following statements is true regarding phototropism?

Plants growing in a partially dark environment will grow toward light in a response called phototropism. Which of the following statements is true regarding phototropism? 





A) It is caused by an electrical signal.
B) One chemical involved is ethylene.
C) Auxin causes a growth increase on one side of the stem.
D) Auxin causes a decrease in growth on the side of the stem exposed to light.
E) Removing the apical meristem enhances phototropism.





Answer: C

Charles and Francis Darwin concluded from their experiments on phototropism by grass seedlings that the part of the seedling that detects the direction of light is the

Charles and Francis Darwin concluded from their experiments on phototropism by grass seedlings that the part of the seedling that detects the direction of light is the 





A) tip of the coleoptile.
B) part of the coleoptile that bends during the response.
C) base of the coleoptile.
D) cotyledon.
E) phytochrome in the leaves.





Answer: A

If protein synthesis was blocked in etiolated cells, what would be necessary for the "greening" of these cells?

If protein synthesis was blocked in etiolated cells, what would be necessary for the "greening" of these cells? 







A) reception of light by phytochrome
B) activation of protein kinase 1 by cAMP
C) activation of protein kinase 2 by Ca2+
D) post-translational modification of existing proteins
E) 100-fold decrease in cytosolic Ca2+ levels






Answer: D