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This deck focuses on Origins Of Life On Earth, giving you a quick way to review the definitions, rules, and examples that matter most for AP Biology.
Study Origins Of Life On Earth in AP Biology with focused flashcards that help you recognize the idea, recall the key rule, and apply it in practice-style prompts.
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What does the endosymbiotic theory explain?
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Origin of eukaryotic cells from prokaryotes. Organelles originated as symbiotic bacteria.
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This deck focuses on Origins Of Life On Earth, 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: Origin of eukaryotic cells from prokaryotes. Organelles originated as symbiotic bacteria.
Answer: Hydrothermal vents. Provide energy and chemical gradients for life processes.
Answer: Horizontal gene transfer. Allows rapid spread of beneficial mutations.
Answer: Spontaneous generation (historical theory). Disproven theory that life emerges from non-living matter.
Answer: ATP (adenosine triphosphate). Universal energy currency for cellular processes.
Answer: Spontaneous generation (historical theory). Disproven theory that life emerges from non-living matter.
Answer: Building blocks of proteins. Essential components for enzymatic and structural functions.
Answer: Mitochondria and chloroplasts have their own DNA. Shows organelles were once independent organisms.
Answer: Oxygen. Reducing atmosphere was necessary for organic synthesis.
Answer: Polymerization. Links monomers into chains through condensation reactions.
Answer: Chemical reactions at hydrothermal vents. Mineral catalysis could drive early metabolism.
Answer: Ability to catalyze their own synthesis. Essential for evolution and inheritance of traits.
Answer: Model for primitive cell-like structures. Membrane-bound droplets that could concentrate molecules.
Answer: Miller-Urey experiment. Simulated early Earth conditions to test abiogenesis.
Answer: Prokaryotic microbes. Simple single-celled organisms without nuclei.
Answer: Formation of self-replicating systems. Must explain how molecules began copying themselves.
Answer: Aggregates of abiotically produced molecules. Early cell-like structures before true living cells.
Answer: Hypothesis that RNA was the first self-replicating molecule. RNA preceded DNA/protein systems in early evolution.
Answer: Condensation reactions. Remove water to form bonds between organic molecules.
Answer: An organism that produces its own food. Doesn't depend on other organisms for nutrition.
Answer: RNA. Can both store information and catalyze reactions.
Answer: Showed organic molecules can form from inorganic precursors. Demonstrated abiotic synthesis of organic compounds.
Answer: Model for primitive cell-like structures. Membrane-bound droplets that could concentrate molecules.
Answer: Condensation reactions. Remove water to form bonds between organic molecules.
Answer: Showed organic molecules can form from inorganic precursors. Demonstrated abiotic synthesis of organic compounds.
Answer: Hypothesis that RNA was the first self-replicating molecule. RNA preceded DNA/protein systems in early evolution.
Answer: Last Universal Common Ancestor. Hypothetical ancestor of all current life forms.
Answer: Monomers of nucleic acids like RNA and DNA. Store genetic information and enable replication.
Answer: Process of ATP generation via proton gradient. Uses proton gradients to synthesize ATP.
Answer: Life arose from a primordial soup. Early hypothesis about chemical origin of life.
Answer: ATP (adenosine triphosphate). Universal energy currency for cellular processes.
Answer: Abiogenesis is the primary hypothesis. Life arising naturally from non-living matter without divine intervention.
Answer: Panspermia. Alternative to abiogenesis - life originated elsewhere in space.
Answer: Proposes life originated on mineral surfaces. Metal sulfides could catalyze early biochemical reactions.
Answer: RNA. Can both store information and catalyze reactions.
Answer: Electric sparks and a mixture of gases. Mimicked lightning and primitive atmosphere composition.
Answer: Aggregates of abiotically produced molecules. Early cell-like structures before true living cells.
Answer: Abiogenesis is the primary hypothesis. Life arising naturally from non-living matter without divine intervention.
Answer: Ozone layer. Blocks harmful UV radiation from reaching surface.
Answer: Produced oxygen through photosynthesis. Changed atmosphere from reducing to oxidizing.
Answer: Proposes life originated on mineral surfaces. Metal sulfides could catalyze early biochemical reactions.
Answer: Sunlight. Drove photosynthesis in early life forms.
Answer: Miller-Urey experiment. Simulated early Earth conditions to test abiogenesis.
Answer: Biogenesis. Life only comes from pre-existing life.
Answer: Horizontal gene transfer. Allows rapid spread of beneficial mutations.
Answer: Monomers of nucleic acids like RNA and DNA. Store genetic information and enable replication.
Answer: Polymerization. Links monomers into chains through condensation reactions.
Answer: Formation of self-replicating systems. Must explain how molecules began copying themselves.
Answer: Building blocks of proteins. Essential components for enzymatic and structural functions.
Answer: Formation and stabilization of Earth's crust. When Earth's surface first solidified from molten state.
Answer: Mitochondria and chloroplasts have their own DNA. Shows organelles were once independent organisms.
Answer: Phospholipids. Form lipid bilayers that create cellular boundaries.
Answer: Ribozymes are RNA molecules with catalytic functions. Supports RNA world hypothesis - RNA can store info and catalyze.
Answer: Biogenesis. Life only comes from pre-existing life.
Answer: Louis Pasteur. Used controlled experiments with sterilized flasks.
Answer: Sunlight. Drove photosynthesis in early life forms.
Answer: Produced oxygen through photosynthesis. Changed atmosphere from reducing to oxidizing.
Answer: Electric sparks and a mixture of gases. Mimicked lightning and primitive atmosphere composition.
Answer: Phospholipids. Form lipid bilayers that create cellular boundaries.
Answer: Panspermia. Alternative to abiogenesis - life originated elsewhere in space.
Answer: Fossilized microbial mats, evidence of early life. Ancient structures showing early microbial communities.
Answer: Radiometric dating. Uses radioactive decay to determine age of rocks/fossils.
Answer: An organism that produces its own food. Doesn't depend on other organisms for nutrition.
Answer: Louis Pasteur. Used controlled experiments with sterilized flasks.
Answer: Chemical reactions at hydrothermal vents. Mineral catalysis could drive early metabolism.
Answer: Formation and stabilization of Earth's crust. When Earth's surface first solidified from molten state.
Answer: Life arose from a primordial soup. Early hypothesis about chemical origin of life.
Answer: Ozone layer. Blocks harmful UV radiation from reaching surface.
Answer: Prokaryotic microbes. Simple single-celled organisms without nuclei.
Answer: Process of ATP generation via proton gradient. Uses proton gradients to synthesize ATP.
Answer: Ability to catalyze their own synthesis. Essential for evolution and inheritance of traits.
Answer: Catalysts for polymerization of organic molecules. Mineral surfaces can concentrate and organize molecules.
Answer: Radiometric dating. Uses radioactive decay to determine age of rocks/fossils.
Answer: Fossilized microbial mats, evidence of early life. Ancient structures showing early microbial communities.
Answer: Oxygen. Reducing atmosphere was necessary for organic synthesis.
Answer: Hydrothermal vents. Provide energy and chemical gradients for life processes.
Answer: Last Universal Common Ancestor. Hypothetical ancestor of all current life forms.
Answer: Origin of eukaryotic cells from prokaryotes. Organelles originated as symbiotic bacteria.
Answer: Catalysts for polymerization of organic molecules. Mineral surfaces can concentrate and organize molecules.
Answer: Ribozymes are RNA molecules with catalytic functions. Supports RNA world hypothesis - RNA can store info and catalyze.