Ch. 17 Speciation and Macroevolution

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Last updated 12:10 AM on 9/13/26
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49 Terms

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Microevolution
Changes in allele frequencies within a population's gene pool.
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Macroevolution
Evolution on a large scale that results in the formation of one or more new species.
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Speciation
The creation of one species from a previous species.
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Species concept
A definition or method used to determine what makes organisms members of the same species.
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Morphologic Species Concept
Defines species based on physical characteristics or diagnostic features that distinguish one species from another.
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Advantage of the Morphologic Species Concept
Can be useful for organisms that can be easily observed and compared by their physical characteristics.
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Disadvantage of the Morphologic Species Concept
Not as useful for microbial organisms or extinct organisms.
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Cryptic species
Species that may look very similar but are actually different species.
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Evolutionary Species Concept
Defines a species based on diagnostic features of organisms that share an evolutionary lineage.
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Advantage of the Evolutionary Species Concept
Can help identify possible speciation in extinct lineages.
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Disadvantage of the Evolutionary Species Concept
Fossil evidence is often incomplete, especially because soft tissues are usually not preserved, so conclusions can be tentative.
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Phylogenetic Species Concept
Defines species based on their relationship to a shared common ancestor.
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Evidence used by the Phylogenetic Species Concept
Morphological, behavioral, and genetic evidence.
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Biologic Species Concept
Defines species based on the ability of organisms to interbreed and produce fertile offspring in nature.
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Reproductive isolation
When organisms do not reproduce because of a physiological, behavioral, or genetic process.
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Advantage of the Biologic Species Concept
Helps determine whether sexually reproducing populations are reproductively isolated.
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Disadvantage of the Biologic Species Concept
Only applies to organisms that reproduce sexually and is not useful for fossils.
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Prezygotic isolating mechanism
A mechanism that prevents mating attempts or prevents successful fertilization before a zygote forms.
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Postzygotic isolating mechanism
A mechanism that prevents hybrid offspring from developing normally or reproducing.
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Habitat isolation
A prezygotic barrier in which species live in different habitats and therefore do not normally meet to mate.
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Temporal isolation
A prezygotic barrier in which species reproduce at different times.
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Behavioral isolation
A prezygotic barrier in which species have different courtship behaviors or patterns.
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Mechanical isolation
A prezygotic barrier in which reproductive structures are incompatible.
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Gamete isolation
A prezygotic barrier in which gametes meet but cannot fuse to form a zygote.
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Hybrid inviability
A postzygotic barrier in which a hybrid zygote is not viable and may die.
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Hybrid sterility
A postzygotic barrier in which a hybrid develops into an adult but cannot reproduce.
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Example of hybrid sterility
A mule is a horse-donkey hybrid that is sterile.
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Five prezygotic barriers
Habitat isolation, temporal isolation, behavioral isolation, mechanical isolation, and gamete isolation.
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Two postzygotic barriers
Hybrid inviability and hybrid sterility.
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Allopatric speciation
The formation of new species caused by geographic isolation.
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Geographic isolation
Physical separation of populations by a geographic barrier.
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Example of allopatric speciation
Ensatina salamanders in California are separated by the Central Valley.
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Sympatric speciation
The formation of new species without geographic isolation.
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Polyploidy
A condition in which an organism has more than two sets of chromosomes.
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Autoploidy
A form of sympatric speciation in which a new polyploid species comes from one diploid species.
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Alloploidy
A form of sympatric speciation in which a new polyploid species comes from two different species.
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Nondisjunction
The failure of chromosomes to separate properly, which can produce gametes with abnormal chromosome numbers.
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Allopatric vs. sympatric speciation
Allopatric speciation occurs because populations are geographically separated; sympatric speciation occurs without geographic separation.
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Convergent evolution
When organisms experience similar environmental pressures and independently evolve similar forms or traits.
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Example of convergent evolution
Cichlid fish in different African lakes experience similar pressures and evolve into similar forms.
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Coevolution
When two organisms influence each other's evolution and adapt in response to each other.
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Example of coevolution
Flowering plants and their pollinators can adapt over time in ways that benefit both organisms.
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Convergent evolution vs. coevolution
Convergent evolution results from similar environmental pressures; coevolution results from interactions between organisms.
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Gradualistic equilibrium model
The model in which reproductively isolated groups slowly adapt in their own ways until they become different species.
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Gradualistic model
Species change gradually over a long period of time, producing many transitional forms.
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Punctuated equilibrium model

Rapid evolutionary change and fast speciation with few transitional forms.

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Gradualistic vs. punctuated equilibrium
Gradualistic evolution involves slow, continuous change; punctuated equilibrium involves relatively rapid changes separated by periods of little change.
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Macroevolution and fossils
Macroevolution is best observed in the fossil record because it involves large-scale evolutionary changes and the formation of new species.
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Is macroevolution goal-oriented?
No. Macroevolution is not goal-oriented; evolution is reactive to environmental pressures.