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This deck focuses on Introduction To Signal Transduction, giving you a quick way to review the definitions, rules, and examples that matter most for AP Biology.
Study Introduction To Signal Transduction 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 is the role of a protein kinase in signal transduction?
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To phosphorylate proteins, altering their activity. Adds phosphate groups to activate/deactivate proteins.
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This deck focuses on Introduction To Signal Transduction, 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: To phosphorylate proteins, altering their activity. Adds phosphate groups to activate/deactivate proteins.
Answer: IP3 and DAG. Two different second messengers produced from one membrane lipid.
Answer: A small signal produces a large cellular response. Each step multiplies signal strength exponentially.
Answer: Reception, transduction, response. Standard pathway: detect signal, process it, then act on it.
Answer: They transmit signals from receptors to enzymes. Act as molecular switches linking receptors to effectors.
Answer: Detecting extracellular hydrophilic signals at the plasma membrane. Water-soluble signals can't cross membranes so need surface receptors.
Answer: cAMP. Cyclic adenosine monophosphate, a major signaling molecule in cells.
Answer: It activates receptor tyrosine kinases. Two receptors pair to activate their kinase domains.
Answer: cAMP. Cyclic adenosine monophosphate, a major signaling molecule in cells.
Answer: Pathway activation occurs even without ligand binding. Always-active receptor signals continuously regardless of ligand presence.
Answer: Endocrine signaling. Hormones travel through circulation to reach distant target cells.
Answer: A small signal produces a large cellular response. Each step multiplies signal strength exponentially.
Answer: A protein that binds a ligand and initiates signal transduction. Detects specific ligands and starts the signaling cascade inside cells.
Answer: Hydrophobic (nonpolar) ligands cross; hydrophilic ligands do not. Polar molecules can't cross lipid membranes without transport proteins.
Answer: Small molecules that relay signals inside the cell. Intracellular messengers that amplify receptor signals.
Answer: Paracrine signaling. Local signaling between cells in the same tissue area.
Answer: It helps activate protein kinase C (PKC) at the membrane. Lipid second messenger that works with calcium to activate PKC.
Answer: Inositol triphosphate (IP3). Second messenger that triggers calcium release from ER.
Answer: Conversion of an external signal into a specific cellular response. Cells detect external signals and produce specific internal responses.
Answer: Reduced or absent cellular response to that ligand. Non-functional receptor cannot detect or respond to its ligand.
Answer: PIP2 (phosphatidylinositol 4,5-bisphosphate). Membrane lipid substrate that gets cleaved by phospholipase C enzyme.
Answer: Altering enzyme activity is typically faster. Protein modification occurs immediately; gene expression requires transcription time.
Answer: Reception, transduction, response. Standard pathway: detect signal, process it, then act on it.
Answer: They remove phosphate groups from proteins to regulate signaling. Dephosphorylation reverses kinase effects to terminate or modulate signaling.
Answer: They transfer phosphate groups to target proteins to alter activity. Phosphorylation changes protein shape and function to propagate signals.
Answer: Protein kinase A (PKA). cAMP-dependent enzyme that phosphorylates target proteins for cellular responses.
Answer: A signaling molecule that binds to a receptor. The signal molecule that triggers cellular responses by receptor binding.
Answer: GTP. High-energy nucleotide activates the alpha subunit for signaling.
Answer: A Ca2+-binding protein that activates target enzymes and proteins. Calcium sensor protein that changes shape when bound to calcium.
Answer: Adenylyl cyclase. G protein-activated enzyme that synthesizes the second messenger cAMP.
Answer: Steroid hormone receptors. Lipophilic hormones cross membrane to bind inside cell.
Answer: To regulate and maintain cellular responses. Prevents excessive signaling by inhibiting pathway components.
Answer: IP3 and DAG. Two different second messengers produced from one membrane lipid.
Answer: Signal reception by a receptor protein. First step where signaling molecule binds to receptor.
Answer: Juxtacrine (contact-dependent) signaling. Membrane-bound signals require physical touching between cells.
Answer: Phosphorylated signaling proteins persist longer, prolonging signaling. Without dephosphorylation, active phosphoproteins accumulate and maintain signaling.
Answer: Serine, threonine, and tyrosine residues. Amino acid residues modified by kinases for regulation.
Answer: A small intracellular molecule that relays and amplifies a signal. Diffusible molecules that spread signals throughout the cell interior.
Answer: A small input triggers a larger output through multi-step activation. Each step activates many molecules, creating exponential signal growth.
Answer: GDP. Low-energy state keeps the G protein subunits together and inactive.
Answer: To regulate gene expression and cell division. Phosphorylation cascade controlling cell growth and differentiation.
Answer: Growth factors. Molecules that stimulate the same cell that secreted them.
Answer: G protein-coupled receptor (GPCR). Seven transmembrane protein that activates intracellular G proteins.
Answer: Serine, threonine, and tyrosine residues. Amino acid residues modified by kinases for regulation.
Answer: A protein that binds a ligand and initiates signal transduction. Detects specific ligands and starts the signaling cascade inside cells.
Answer: To transmit signals from cytokines to the nucleus. Cytokine-activated pathway directly phosphorylating transcription factors.
Answer: The receptor undergoes a conformational change. Shape change allows receptor to interact with other proteins.
Answer: Juxtacrine signaling. Cell-to-cell contact signaling via membrane-bound molecules.
Answer: They enhance the efficiency of signal transduction. Organize signaling proteins for faster interactions.
Answer: It allows ion flow across the membrane. Ligand binding opens channel for specific ion movement.
Answer: The receptor phosphorylates its own tyrosine residues after activation. Activated receptor adds phosphates to its own tyrosine amino acids.
Answer: Detecting extracellular hydrophilic signals at the plasma membrane. Water-soluble signals can't cross membranes so need surface receptors.
Answer: Altering enzyme activity is typically faster. Protein modification occurs immediately; gene expression requires transcription time.
Answer: To amplify the signal and ensure a specific response. Sequential protein interactions amplify and direct signal.
Answer: Ion flow changes membrane potential and/or cytosolic ion levels. Changed electrical properties trigger rapid cellular responses.
Answer: Receptor tyrosine kinase (RTK). Ligand binding causes two receptors to pair and cross-phosphorylate.
Answer: To transfer phosphate groups to tyrosine residues. Autophosphorylation activates kinase domain for downstream signaling.
Answer: To relay signals from receptor tyrosine kinases. GTPase that activates MAP kinase cascades downstream.
Answer: To relay signals from receptor tyrosine kinases. GTPase that activates MAP kinase cascades downstream.
Answer: Autocrine signaling. Self-signaling allows cells to regulate their own activity.
Answer: A signaling molecule that binds to a receptor. The signal molecule that triggers cellular responses by receptor binding.
Answer: Sequential activation of kinases via phosphorylation. Each active kinase phosphorylates multiple downstream kinases for amplification.
Answer: Receptor tyrosine kinases. Dual-function proteins with catalytic activity when activated.
Answer: Small molecules that relay signals inside the cell. Intracellular messengers that amplify receptor signals.
Answer: Binding small hydrophobic ligands inside the cell to regulate activity. Lipid-soluble molecules can enter cells and bind internal proteins.
Answer: Ion flow changes membrane potential and/or cytosolic ion levels. Changed electrical properties trigger rapid cellular responses.
Answer: Protein kinase A (PKA). cAMP-activated kinase that phosphorylates target proteins.
Answer: Signal reception by a receptor protein. First step where signaling molecule binds to receptor.
Answer: Paracrine signaling. Local signaling between nearby cells via diffusion.
Answer: To convert an external signal into a cellular response. Converts extracellular stimuli into intracellular responses.
Answer: cAMP (cyclic adenosine monophosphate). Universal second messenger activated by adenylyl cyclase.
Answer: It converts ATP to cAMP. G-protein activated enzyme producing cAMP second messenger.
Answer: It converts ATP to cAMP. G-protein activated enzyme producing cAMP second messenger.
Answer: Autocrine signaling. Self-signaling allows cells to regulate their own activity.
Answer: Steroid hormone receptors. Lipophilic hormones cross membrane to bind inside cell.
Answer: Hydrophobic (nonpolar) ligands cross; hydrophilic ligands do not. Polar molecules can't cross lipid membranes without transport proteins.
Answer: A molecule that binds specifically to a receptor. Signal molecule with specific receptor binding affinity.
Answer: A Ca2+-binding protein that activates target enzymes and proteins. Calcium sensor protein that changes shape when bound to calcium.
Answer: Hydrolysis of GTP to GDP by the alpha subunit (GTPase activity). Built-in enzyme activity returns G protein to inactive state.
Answer: It acts as a second messenger with IP3. Lipid messenger that activates protein kinase C.
Answer: Specificity and regulation of cellular responses. Ensures appropriate cellular responses to external stimuli.
Answer: They enhance the efficiency of signal transduction. Organize signaling proteins for faster interactions.
Answer: Ligand-gated ion channel receptor. Opens ion channels directly when ligand binds to receptor.
Answer: It helps activate protein kinase C (PKC) at the membrane. Lipid second messenger that works with calcium to activate PKC.
Answer: GDP. Low-energy state keeps the G protein subunits together and inactive.
Answer: The signal is turned off, ending the response. Signal degradation or receptor desensitization stops response.
Answer: Specificity and regulation of cellular responses. Ensures appropriate cellular responses to external stimuli.
Answer: Phosphodiesterase (PDE). Breaks down cAMP to stop the signaling response.
Answer: Adenylyl cyclase. G protein-activated enzyme that synthesizes the second messenger cAMP.
Answer: To transmit signals from cytokines to the nucleus. Cytokine-activated pathway directly phosphorylating transcription factors.
Answer: To regulate gene expression in response to signals. Protein that controls gene transcription when activated.
Answer: In the nucleus after receptor binding. Steroid-receptor complexes directly regulate transcription.
Answer: To transfer phosphate groups to tyrosine residues. Autophosphorylation activates kinase domain for downstream signaling.
Answer: A small input triggers a larger output through multi-step activation. Each step activates many molecules, creating exponential signal growth.
Answer: Paracrine signaling. Local signaling between nearby cells via diffusion.
Answer: GTP. High-energy nucleotide activates the alpha subunit for signaling.
Answer: To open or close in response to a ligand binding. Channel conformational change allows ion permeability.
Answer: Ligands such as hormones or neurotransmitters. Signaling molecules that bind to specific receptors.
Answer: Paracrine signaling. Local signaling between cells in the same tissue area.
Answer: Juxtacrine (contact-dependent) signaling. Membrane-bound signals require physical touching between cells.