What this deck covers
This deck focuses on Common Ancestry, giving you a quick way to review the definitions, rules, and examples that matter most for AP Biology.
Study Common Ancestry in AP Biology with focused flashcards that help you recognize the idea, recall the key rule, and apply it in practice-style prompts.
0% Complete
Identify the term for a branching point in a phylogenetic tree.
Tap card or press Space to flip
Node. Each branching point shows where lineages split from ancestors.
How well did you know it?
Card 1 / 71
Space to flip · ← / → to move · once flipped, → Got it · ← Still learning
This deck focuses on Common Ancestry, giving you a quick way to review the definitions, rules, and examples that matter most for AP Biology.
Work through these flashcards in short sessions. Try to answer each prompt before flipping the card, then revisit any cards you miss until the explanation feels automatic.
Answer: Node. Each branching point shows where lineages split from ancestors.
Answer: When a new colony is started by a few members. Small founding population creates genetic drift in new location.
Answer: Convergent evolution. Independent evolution produces similar solutions to environmental challenges.
Answer: Structures with similar function but different origins. Result of convergent evolution, not common ancestry.
Answer: Remnants of structures from common ancestors. These useless structures indicate inheritance from functional ancestral forms.
Answer: Universal genetic code. Same code in all life suggests all organisms share one ancestor.
Answer: DNA or protein sequences. Molecular sequences reveal evolutionary distances and relationships.
Answer: Homologous trait. Shows direct inheritance from a shared ancestor.
Answer: Phylogeny. The complete evolutionary history and relationships of a lineage.
Answer: Universal genetic code. Same code in all life suggests all organisms share one ancestor.
Answer: DNA and protein sequence similarities. These molecules show evolutionary relationships through sequence conservation.
Answer: Species distribution correlates with geological history. Geographic patterns match evolutionary divergence from common ancestors.
Answer: Reduction in genetic diversity due to population reduction. Severe population decline randomly eliminates genetic variants.
Answer: Reciprocal evolutionary changes in interacting species. Species evolve together, each influencing the other's evolution.
Answer: Different species evolve similar traits independently. Creates analogous structures through similar environmental pressures.
Answer: Reciprocal evolutionary changes in interacting species. Species evolve together, each influencing the other's evolution.
Answer: A common ancestor. Polyphyletic groups incorrectly combine unrelated lineages.
Answer: DNA. All life uses the same genetic code, indicating common origin.
Answer: Two lineages that are each other's closest relatives. Shows the closest evolutionary relationship possible between lineages.
Answer: Example of adaptive radiation. Darwin's finches show how one species diversified into many.
Answer: Random changes in allele frequencies. Causes random evolutionary changes independent of natural selection.
Answer: They show transitional forms and evolutionary history. Fossils provide direct evidence of evolutionary changes over time.
Answer: Diversification of a species into various forms. Shows rapid evolution from a common ancestor into new niches.
Answer: Tiktaalik. Shows transition between fish and tetrapods with intermediate features.
Answer: Organisms share a common ancestor if they descend from a shared species. This defines the fundamental concept of shared evolutionary origin.
Answer: Structures with similar function but different origins. Result of convergent evolution, not common ancestry.
Answer: The root of the tree. The base of the tree represents the original common ancestor.
Answer: Homologous. Homologous structures share ancestry; analogous structures do not.
Answer: The appendix. A reduced organ that once served a function in ancestors.
Answer: Organisms share a common ancestor if they descend from a shared species. This defines the fundamental concept of shared evolutionary origin.
Answer: A group that includes a common ancestor and all its descendants. Represents a complete evolutionary unit with no missing lineages.
Answer: Estimating divergence times based on mutation rates. Uses constant mutation rates to calculate when species diverged.
Answer: Transfer of genes between organisms in a manner other than reproduction. Allows rapid spread of advantageous genes between species.
Answer: Different species evolve similar traits independently. Creates analogous structures through similar environmental pressures.
Answer: DNA and protein sequence similarities. These molecules show evolutionary relationships through sequence conservation.
Answer: A group that includes a common ancestor and all its descendants. Represents a complete evolutionary unit with no missing lineages.
Answer: Transfer of genes between organisms in a manner other than reproduction. Allows rapid spread of advantageous genes between species.
Answer: Tiktaalik. Shows transition between fish and tetrapods with intermediate features.
Answer: Reduction in genetic diversity due to population reduction. Severe population decline randomly eliminates genetic variants.
Answer: Structures in different species with a common origin. Despite different functions, they share the same evolutionary blueprint.
Answer: A shared derived trait in a clade. A defining characteristic that unites a group of related species.
Answer: Remnants of structures from common ancestors. These useless structures indicate inheritance from functional ancestral forms.
Answer: Provides material for evolutionary innovation. Extra gene copies can evolve new functions without losing originals.
Answer: Simplest explanation with fewest evolutionary changes. Minimizes assumptions by choosing the most economical evolutionary pathway.
Answer: Diagram showing evolutionary relationships. Uses branching patterns to show evolutionary relationships.
Answer: DNA. All life uses the same genetic code, indicating common origin.
Answer: Species distribution correlates with geological history. Geographic patterns match evolutionary divergence from common ancestors.
Answer: Provides material for evolutionary innovation. Extra gene copies can evolve new functions without losing originals.
Answer: They show transitional forms and evolutionary history. Fossils provide direct evidence of evolutionary changes over time.
Answer: Node. Each branching point shows where lineages split from ancestors.
Answer: Endosymbiotic theory. Explains how bacteria became organelles through symbiosis.
Answer: Phylogeny. The complete evolutionary history and relationships of a lineage.
Answer: The root of the tree. The base of the tree represents the original common ancestor.
Answer: Two lineages that are each other's closest relatives. Shows the closest evolutionary relationship possible between lineages.
Answer: Random changes in allele frequencies. Causes random evolutionary changes independent of natural selection.
Answer: Estimating divergence times based on mutation rates. Uses constant mutation rates to calculate when species diverged.
Answer: Evolutionary relationships among species. Shows how species diverged from common ancestors over time.
Answer: Similar embryonic development stages. Early developmental similarities reveal shared evolutionary history.
Answer: Mitochondrial DNA. Inherited maternally, useful for tracing female ancestry lines.
Answer: Simplest explanation with fewest evolutionary changes. Minimizes assumptions by choosing the most economical evolutionary pathway.
Answer: Migration. Movement of individuals transfers alleles between populations.
Answer: Homologous. Homologous structures share ancestry; analogous structures do not.
Answer: Stabilizing selection. Reduces extreme variations by favoring average characteristics.
Answer: Stabilizing selection. Reduces extreme variations by favoring average characteristics.
Answer: Migration. Movement of individuals transfers alleles between populations.
Answer: A common ancestor. Polyphyletic groups incorrectly combine unrelated lineages.
Answer: Endosymbiotic theory. Explains how bacteria became organelles through symbiosis.
Answer: Diversification of a species into various forms. Shows rapid evolution from a common ancestor into new niches.
Answer: Convergent evolution. Independent evolution produces similar solutions to environmental challenges.
Answer: Evolutionary relationships among species. Shows how species diverged from common ancestors over time.
Answer: Homologous trait. Shows direct inheritance from a shared ancestor.