The Plant Kingdom Quiz
The question sheet
Reveal any answer as you study-
About how many species of catalogued plants exist?
- Close to 40 million
- Close to 300,000
- About 260,000
- About 461,000
Reveal answer
Answer: Close to 300,000
Source evidence
PDF page 334: Plants are a large and varied group of organisms. There are close to 300,000 species of 1 catalogued plants. Of these, about 260,000 are plants that produce seeds. Mosses, ferns, conifers, and flowering plants are all members of the plant kingdom. The plant kingdom contains mostly photosynthetic organisms; a few parasitic forms have lost the ability to photosynthesize. The process of photosynthesis uses chlorophyll, which is located in organelles called chloroplasts. Plants possess cell walls containing cellulose. Most plants reproduce sexually, but they also have diverse methods of asexual reproduction. Plants exhibit indeterminate growth, meaning they do not have a final body form, but continue to grow body mass until they die. Plant sex cells and sex organs are classified using the same system as those of animals. Plants reproduce through a union of two sex cells or gametes of different sizes. The larger gametes, called eggs, are classified as female gametes; the organs that produce them, called pistils, are classified as female organs. The smaller gametes, called sperm, are classified as male gametes; the organs that produces them, called the stamens, are classified as male organs. In many plants, pistils and stamens are found on the same plant body, making the plant capable of both selffertilization or cross-fertilization with another individual.
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Which pigment does photosynthesis use in plants?
- Oleanane
- Sporopollenin
- Cellulose
- Chlorophyll
Reveal answer
Answer: Chlorophyll
Source evidence
PDF page 334: Plants are a large and varied group of organisms. There are close to 300,000 species of 1 catalogued plants. Of these, about 260,000 are plants that produce seeds. Mosses, ferns, conifers, and flowering plants are all members of the plant kingdom. The plant kingdom contains mostly photosynthetic organisms; a few parasitic forms have lost the ability to photosynthesize. The process of photosynthesis uses chlorophyll, which is located in organelles called chloroplasts. Plants possess cell walls containing cellulose. Most plants reproduce sexually, but they also have diverse methods of asexual reproduction. Plants exhibit indeterminate growth, meaning they do not have a final body form, but continue to grow body mass until they die. Plant sex cells and sex organs are classified using the same system as those of animals. Plants reproduce through a union of two sex cells or gametes of different sizes. The larger gametes, called eggs, are classified as female gametes; the organs that produce them, called pistils, are classified as female organs. The smaller gametes, called sperm, are classified as male gametes; the organs that produces them, called the stamens, are classified as male organs. In many plants, pistils and stamens are found on the same plant body, making the plant capable of both selffertilization or cross-fertilization with another individual.
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Plant cell walls contain which substance?
- Cellulose
- Sporopollenin
- Chitin
- Peptidoglycan
Reveal answer
Answer: Cellulose
Source evidence
PDF page 334: Plants are a large and varied group of organisms. There are close to 300,000 species of 1 catalogued plants. Of these, about 260,000 are plants that produce seeds. Mosses, ferns, conifers, and flowering plants are all members of the plant kingdom. The plant kingdom contains mostly photosynthetic organisms; a few parasitic forms have lost the ability to photosynthesize. The process of photosynthesis uses chlorophyll, which is located in organelles called chloroplasts. Plants possess cell walls containing cellulose. Most plants reproduce sexually, but they also have diverse methods of asexual reproduction. Plants exhibit indeterminate growth, meaning they do not have a final body form, but continue to grow body mass until they die. Plant sex cells and sex organs are classified using the same system as those of animals. Plants reproduce through a union of two sex cells or gametes of different sizes. The larger gametes, called eggs, are classified as female gametes; the organs that produce them, called pistils, are classified as female organs. The smaller gametes, called sperm, are classified as male gametes; the organs that produces them, called the stamens, are classified as male organs. In many plants, pistils and stamens are found on the same plant body, making the plant capable of both selffertilization or cross-fertilization with another individual.
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What does indeterminate growth mean in plants?
- They reproduce only asexually
- They keep growing until they die
- They stop growing at maturity
- They lack sex organs
Reveal answer
Answer: They keep growing until they die
Source evidence
PDF page 334: Plants are a large and varied group of organisms. There are close to 300,000 species of 1 catalogued plants. Of these, about 260,000 are plants that produce seeds. Mosses, ferns, conifers, and flowering plants are all members of the plant kingdom. The plant kingdom contains mostly photosynthetic organisms; a few parasitic forms have lost the ability to photosynthesize. The process of photosynthesis uses chlorophyll, which is located in organelles called chloroplasts. Plants possess cell walls containing cellulose. Most plants reproduce sexually, but they also have diverse methods of asexual reproduction. Plants exhibit indeterminate growth, meaning they do not have a final body form, but continue to grow body mass until they die. Plant sex cells and sex organs are classified using the same system as those of animals. Plants reproduce through a union of two sex cells or gametes of different sizes. The larger gametes, called eggs, are classified as female gametes; the organs that produce them, called pistils, are classified as female organs. The smaller gametes, called sperm, are classified as male gametes; the organs that produces them, called the stamens, are classified as male organs. In many plants, pistils and stamens are found on the same plant body, making the plant capable of both selffertilization or cross-fertilization with another individual.
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In plants, the organs that produce eggs are called:
- Antheridia
- Pistils
- Sporangia
- Stamens
Reveal answer
Answer: Pistils
Source evidence
PDF page 334: Plants are a large and varied group of organisms. There are close to 300,000 species of 1 catalogued plants. Of these, about 260,000 are plants that produce seeds. Mosses, ferns, conifers, and flowering plants are all members of the plant kingdom. The plant kingdom contains mostly photosynthetic organisms; a few parasitic forms have lost the ability to photosynthesize. The process of photosynthesis uses chlorophyll, which is located in organelles called chloroplasts. Plants possess cell walls containing cellulose. Most plants reproduce sexually, but they also have diverse methods of asexual reproduction. Plants exhibit indeterminate growth, meaning they do not have a final body form, but continue to grow body mass until they die. Plant sex cells and sex organs are classified using the same system as those of animals. Plants reproduce through a union of two sex cells or gametes of different sizes. The larger gametes, called eggs, are classified as female gametes; the organs that produce them, called pistils, are classified as female organs. The smaller gametes, called sperm, are classified as male gametes; the organs that produces them, called the stamens, are classified as male organs. In many plants, pistils and stamens are found on the same plant body, making the plant capable of both selffertilization or cross-fertilization with another individual.
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The larger female gametes in plants are called:
- Eggs
- Zygotes
- Sperm
- Spores
Reveal answer
Answer: Eggs
Source evidence
PDF page 334: Plants are a large and varied group of organisms. There are close to 300,000 species of 1 catalogued plants. Of these, about 260,000 are plants that produce seeds. Mosses, ferns, conifers, and flowering plants are all members of the plant kingdom. The plant kingdom contains mostly photosynthetic organisms; a few parasitic forms have lost the ability to photosynthesize. The process of photosynthesis uses chlorophyll, which is located in organelles called chloroplasts. Plants possess cell walls containing cellulose. Most plants reproduce sexually, but they also have diverse methods of asexual reproduction. Plants exhibit indeterminate growth, meaning they do not have a final body form, but continue to grow body mass until they die. Plant sex cells and sex organs are classified using the same system as those of animals. Plants reproduce through a union of two sex cells or gametes of different sizes. The larger gametes, called eggs, are classified as female gametes; the organs that produce them, called pistils, are classified as female organs. The smaller gametes, called sperm, are classified as male gametes; the organs that produces them, called the stamens, are classified as male organs. In many plants, pistils and stamens are found on the same plant body, making the plant capable of both selffertilization or cross-fertilization with another individual.
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What is a constant danger for an organism exposed to air on land?
- Too much carbon dioxide
- Filtered sunlight
- Excess buoyancy
- Desiccation
Reveal answer
Answer: Desiccation
Source evidence
PDF page 334: As organisms adapt to life on land, they have to contend with several challenges in the terrestrial environment. Water has been described as “the stuff of life.” The cell’s interior—the medium in which most small molecules dissolve and diffuse, and in which the majority of the chemical reactions of metabolism take place—is a watery soup. Desiccation, or drying out, is a constant danger for an organism exposed to air. Even when parts of a plant are close to a source of water, their aerial structures are likely to dry out. Water provides buoyancy to organisms that live in aquatic habitats. On land, plants need to develop structural support in air—a medium that does not give the same lift. Additionally, the male and female gametes must reach one another using new strategies because swimming is no longer possible. Finally, both gametes and zygotes must be protected from drying out. The successful land plants evolved strategies to deal with all of
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Which is an advantage of life on land for plants?
- Buoyancy from water
- Filtered light spectrum
- More support in air
- Abundant sunlight
Reveal answer
Answer: Abundant sunlight
Source evidence
PDF page 335: these challenges, although not all adaptations appeared at once. Some species did not move far from an aquatic environment, whereas others left the water and went on to conquer the driest environments on Earth. To balance these survival challenges, life on land offers several advantages. First, sunlight is abundant. On land, the spectral quality of light absorbed by the photosynthetic pigment, chlorophyll, is not filtered out by water or competing photosynthetic species in the water column above. Second, carbon dioxide is more readily available because its concentration is higher in air than in water. Additionally, land plants evolved before land animals; therefore, until dry land was colonized by animals, no predators threatened the well-being of plants. This situation changed as animals emerged from the water and found abundant sources of nutrients in the established flora. In turn, plants evolved strategies to deter predation: from spines and thorns to toxic chemicals. The early land plants, like the early land animals, did not live far from an abundant source of water and developed survival strategies to combat dryness. One of these strategies is drought tolerance. Mosses, for example, can dry out to a brown and brittle mat, but as soon as rain makes water available, mosses will soak it up and regain their healthy, green appearance. Another strategy is to colonize environments with high humidity where droughts are uncommon. Ferns, an early lineage of plants, thrive in damp and cool places, such as the understory of temperate forests. Later, plants moved away from aquatic environments using resistance to desiccation, rather than tolerance. These plants, like the cactus, minimize water loss to such an extent they can survive in the driest environments on Earth. In addition to adaptations specific to life on land, land plants exhibit adaptations that were responsible for their diversity and predominance in terrestrial ecosystems. Four major adaptations are found in many terrestrial plants: the alternation of generations, a sporangium in which spores are formed, a gametangium that produces haploid cells, and in vascular plants, apical meristem tissue in roots and shoots. Alternation of Generations Alternation of generations describes a life cycle in which an organism has both haploid and diploid multicellular stages (Figure 14.2).
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How can mosses survive drying out?
- Deep roots
- Thick cuticle
- Drought tolerance
- Toxic chemicals
Reveal answer
Answer: Drought tolerance
Source evidence
PDF page 335: these challenges, although not all adaptations appeared at once. Some species did not move far from an aquatic environment, whereas others left the water and went on to conquer the driest environments on Earth. To balance these survival challenges, life on land offers several advantages. First, sunlight is abundant. On land, the spectral quality of light absorbed by the photosynthetic pigment, chlorophyll, is not filtered out by water or competing photosynthetic species in the water column above. Second, carbon dioxide is more readily available because its concentration is higher in air than in water. Additionally, land plants evolved before land animals; therefore, until dry land was colonized by animals, no predators threatened the well-being of plants. This situation changed as animals emerged from the water and found abundant sources of nutrients in the established flora. In turn, plants evolved strategies to deter predation: from spines and thorns to toxic chemicals. The early land plants, like the early land animals, did not live far from an abundant source of water and developed survival strategies to combat dryness. One of these strategies is drought tolerance. Mosses, for example, can dry out to a brown and brittle mat, but as soon as rain makes water available, mosses will soak it up and regain their healthy, green appearance. Another strategy is to colonize environments with high humidity where droughts are uncommon. Ferns, an early lineage of plants, thrive in damp and cool places, such as the understory of temperate forests. Later, plants moved away from aquatic environments using resistance to desiccation, rather than tolerance. These plants, like the cactus, minimize water loss to such an extent they can survive in the driest environments on Earth. In addition to adaptations specific to life on land, land plants exhibit adaptations that were responsible for their diversity and predominance in terrestrial ecosystems. Four major adaptations are found in many terrestrial plants: the alternation of generations, a sporangium in which spores are formed, a gametangium that produces haploid cells, and in vascular plants, apical meristem tissue in roots and shoots. Alternation of Generations Alternation of generations describes a life cycle in which an organism has both haploid and diploid multicellular stages (Figure 14.2).
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The haploid multicellular form of a plant is the:
- Gametophyte
- Sporangium
- Sporophyte
- Zygote
Reveal answer
Answer: Gametophyte
Source evidence
PDF page 335: of work by Peter Coxhead) Haplontic refers to a life cycle in which there is a dominant haploid stage. Diplontic refers to a life cycle in which the diploid stage is the dominant stage, and the haploid chromosome number is only seen for a brief time in the life cycle during sexual reproduction. Humans are diplontic, for example. Most plants exhibit alternation of generations, which is described as haplodiplontic: the haploid multicellular form known as a gametophyte is followed in the development sequence by a multicellular diploid organism, the sporophyte. The gametophyte gives rise to the gametes, or reproductive cells, by mitosis. It can be the most obvious phase of the life cycle of the plant, as in the mosses, or it can occur in a microscopic structure, such as a pollen grain in the higher plants (the collective term for the vascular plants). The sporophyte stage is barely noticeable in lower plants (the collective term for the plant groups of mosses, liverworts, and hornworts). Towering trees are the diplontic phase in the lifecycles of plants such as sequoias and pines.
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Inside sporangia, sporocytes produce haploid spores by:
- Syngamy
- Mitosis
- Meiosis
- Fertilization
Reveal answer
Answer: Meiosis
Source evidence
PDF page 336: Sporangia in the Seedless Plants The sporophyte of seedless plants is diploid and results from syngamy or the fusion of two gametes (Figure 14.2). The sporophyte bears the sporangia (singular, sporangium), organs that first appeared in the land plants. The term “sporangia” literally means “spore in a vessel,” as it is a reproductive sac that contains spores. Inside the multicellular sporangia, the diploid sporocytes, or mother cells, produce haploid spores by meiosis, which reduces the 2n chromosome number to 1n. The spores are later released by the sporangia and disperse in the environment. Two different types of spores are produced in land plants, resulting in the separation of sexes at different points in the life cycle. Seedless nonvascular plants (more appropriately referred to as “seedless nonvascular plants with a dominant gametophyte phase”) produce only one kind of spore, and are called homosporous. After germinating from a spore, the gametophyte produces both male and female gametangia, usually on the same individual. In contrast, heterosporous plants produce two morphologically different types of spores. The male spores are called microspores because of their smaller size; the comparatively larger megaspores will develop into the female gametophyte. Heterospory is observed in a few seedless vascular plants and in all seed plants. When the haploid spore germinates, it generates a multicellular gametophyte by mitosis. The gametophyte supports the zygote formed from the fusion of gametes and the resulting young sporophyte or vegetative form, and the cycle begins anew (Figure 14.3 and Figure 14.4).
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Plants producing only one kind of spore are called:
- Diplontic
- Homosporous
- Haplontic
- Heterosporous
Reveal answer
Answer: Homosporous
Source evidence
PDF page 336: Sporangia in the Seedless Plants The sporophyte of seedless plants is diploid and results from syngamy or the fusion of two gametes (Figure 14.2). The sporophyte bears the sporangia (singular, sporangium), organs that first appeared in the land plants. The term “sporangia” literally means “spore in a vessel,” as it is a reproductive sac that contains spores. Inside the multicellular sporangia, the diploid sporocytes, or mother cells, produce haploid spores by meiosis, which reduces the 2n chromosome number to 1n. The spores are later released by the sporangia and disperse in the environment. Two different types of spores are produced in land plants, resulting in the separation of sexes at different points in the life cycle. Seedless nonvascular plants (more appropriately referred to as “seedless nonvascular plants with a dominant gametophyte phase”) produce only one kind of spore, and are called homosporous. After germinating from a spore, the gametophyte produces both male and female gametangia, usually on the same individual. In contrast, heterosporous plants produce two morphologically different types of spores. The male spores are called microspores because of their smaller size; the comparatively larger megaspores will develop into the female gametophyte. Heterospory is observed in a few seedless vascular plants and in all seed plants. When the haploid spore germinates, it generates a multicellular gametophyte by mitosis. The gametophyte supports the zygote formed from the fusion of gametes and the resulting young sporophyte or vegetative form, and the cycle begins anew (Figure 14.3 and Figure 14.4).
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