Start with the concept explanation, then practise to create mastery evidence.
8
Learning objective
2.1.8—Niche
New
• A niche describes the particular set of abiotic and biotic conditions and resources upon which an organism or a population depends
• An ecological niche is the role of a species in an ecosystem
• The niche comprises all biotic and abiotic interactions that influence the growth, survival and reproduction of a population, including how food is obtained
• Include: some of the parameters of a niche for a named species
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Start with the concept explanation, then practise to create mastery evidence.
9
Learning objective
2.1.9—Population interactions
New
• Populations interact in ecosystems by herbivory, predation, parasitism, mutualism, disease and competition, with ecological, behavioural and evolutionary consequences
• Consider: one example of each relationship and consider how the relationships influence the population dynamics of the interacting populations and the selective pressures involved
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10
Learning objective
2.1.10—Carrying capacity
New
• Carrying capacity is the maximum size of a population determined by competition for limited resources
• Include: examples of resources that may affect carrying capacity, including biotic and abiotic factors
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11
Learning objective
2.1.11—Density-dependent regulation
New
• Population size is regulated by density-dependent factors and negative feedback mechanisms
• Density-independent factors may influence population size, but density-dependent factors tend to regulate populations around carrying capacity
• In addition to competition for limited resources, include the increased risk of predation and the transfer of pathogens in dense populations
• These are examples of negative feedback returning a population to equilibrium
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12
Learning objective
2.1.12—Population growth curves
New
• Population growth can either be exponential or limited by carrying capacity
• If there are no limiting factors, population growth follows a J-curve (exponential growth)
• When density-dependent limiting factors start to operate, the curve becomes S-shaped
• Consider S-curves and boom-and-bust patterns, such as reindeer on St Matthew Island
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Start with the concept explanation, then practise to create mastery evidence.
13
Learning objective
2.1.13—Human population limiting factors
New
• Limiting factors on the growth of human populations have increasingly been eliminated, resulting in consequences for sustainability of ecosystems
• Include: the effects of elimination of natural predators, technological advances, and degradation of the environment
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14
Learning objective
2.1.14—Human carrying capacity
New
• Carrying capacity cannot be easily assessed for human populations
• This is because of the broad and changing ecological niche of humans
• Include: the idea of populations achieving equilibrium within ecosystems, but human populations being less limited due to mobility of resources
• The expansion of the human niche also takes place through technological advances and changes in consumption
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15
Learning objective
2.1.15—Estimating population abundance
New
• Population abundance can be estimated using random sampling, systematic sampling or transect sampling
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16
Learning objective
2.1.16—Quadrat sampling
New
• Estimate population size for non-mobile organisms
• Measures: percentage cover, frequency, abundance
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17
Learning objective
2.1.17—Capture-mark-release-recapture
New
• Estimate population size for mobile organisms
• Lincoln index: Population = (M × N) / R
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18
Learning objective
2.1.18—Community definition
New
• Collection of interacting populations within ecosystem
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19
Learning objective
2.1.19—Habitat definition
New
• Location where community, species, population, or organism lives
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20
Learning objective
2.1.20—Ecosystems as open systems
New
• Energy and matter can enter and exit
• Community + physical environment interactions
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21
Learning objective
2.1.21—Ecosystem sustainability
New
• Natural property of ecosystems
• Inputs balanced by outputs in steady-state
• Some persist for millions of years (e.g., tropical rainforests)
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22
Learning objective
2.1.22—Human impacts on stability
New
• Can lead to tipping points
• Example: Amazon deforestation reduces transpiration → reduced rainfall
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23
Learning objective
2.1.23—Keystone species
New
• Keystone species have a role in the sustainability of ecosystems
• There is a disproportionate impact on community structure of keystone species and the risk of ecosystem collapse if they are removed
• Consider: two examples
• For example, purple sea stars controlling mussel populations on the North Pacific coast that would otherwise overwhelm the ecosystem; elephants feeding on shrubs and trees
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24
Learning objective
2.1.24—Biosphere integrity boundary
New
• The planetary boundaries model indicates that changes to biosphere integrity have passed a critical threshold
• There is an interrelationship between ecosystems and species diversity
• Disturbance of ecosystems due to human activity has led to loss of biosphere integrity
• Extinction rates provide evidence that the planetary boundary for biosphere integrity has been crossed
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25
Learning objective
2.1.25—Reversing biosphere integrity loss
New
• To avoid critical tipping points, loss of biosphere integrity needs to be reversed
• Ecosystem damage and loss of species can be slowed by protecting the integrity of ecosystems
• Protecting ecosystems ensures the preservation of the niche requirements essential for the ongoing survival of a species
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26
Learning objective
2.1.26 (HL)—Clades and evolutionary classification
New
• Clades show evolutionary relationships within a taxonomic group
• All clade members evolved from a common ancestor
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27
Learning objective
2.1.27 (HL)—Limits of traditional taxa
New
• Traditional hierarchy: kingdom, phylum, class, order, family, genus, species
• This hierarchy does not always match evolutionary divergence patterns
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28
Learning objective
2.1.28 (HL)—Fundamental and realized niches
New
• Fundamental niche: conditions/resources where a species could survive and reproduce without limiting factors
• Realized niche: actual mode of existence shaped by adaptations and competition
• Examples: Connell barnacle species; brown and green anoles
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29
Learning objective
2.1.29 (HL)—Life cycles and r/K strategies
New
• Life cycles vary in reproductive behaviour and lifespan
• K-strategists: stable communities, few offspring, high survival chance
• r-strategists: rapid colonization, many offspring, limited survival provision
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30
Learning objective
2.1.30 (HL)—Human impacts on species
New
• Classification, niche requirements and life cycles help explain human impacts
• Examples: climate-driven plant life-cycle changes affecting animal life cycles
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