Lesson 3.1.2
3.1.2 Brain structure and aggression Quiz: Pearson Edexcel Psychology, Unit 3
20 questions
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Lesson 3.1.2, Brain structure and aggression: 20 multiple choice questions for the Pearson Edexcel Psychology (9PS0), Unit 3: Biological psychology, written with Revision Ninja.
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The 20 questions
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What is the effect of amphetamine on neurotransmission?
- It blocks all neurotransmitter release at every synapse, so neurons cannot send any signal to each other
- It increases the release of dopamine and noradrenaline, which increases arousal and alertness
- It converts serotonin into dopamine in the synapse, so the two neurotransmitters are interchanged
- It stops the myelin sheath from forming, so impulses cannot travel along the axon of neurons at all
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How does cocaine affect neurotransmission?
- It destroys the myelin sheath, so impulses can no longer travel along the axon of the neuron at all
- It converts GABA into glutamate, so the inhibitory signal is changed into an excitatory signal in the brain
- It increases the reuptake of dopamine, so dopamine is removed from the cleft much more quickly than usual
- It blocks the reuptake of dopamine, so dopamine stays in the synaptic cleft for longer
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What is the main effect of alcohol on neurotransmission?
- It blocks the inhibitory neurotransmitter GABA, which increases brain activity and makes neurons fire faster
- It enhances the effect of the inhibitory neurotransmitter GABA, which slows brain activity
- It increases the release of glutamate, which is inhibitory and reduces the firing of neurons in the brain
- It destroys all dopamine receptors in the brain, so that no reward signal can be sent at any point
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How does ecstasy (MDMA) affect serotonin?
- It converts dopamine into serotonin in the terminal button, so the mood effects are created by that conversion
- It has no effect on serotonin, since ecstasy works only through the release of adrenaline in the blood
- It destroys serotonin in the synapse, so no serotonin is available to bind to receptors on the next neuron
- It increases the release of serotonin and blocks its reuptake, so more serotonin is present in the synapse
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Which drug is most likely to produce a rush of dopamine in reward pathways?
- Nicotine, which mainly stimulates acetylcholine receptors and so increases heart rate in most users
- Cocaine, which blocks dopamine reuptake and so prolongs dopamine's effect
- Alcohol, which mainly enhances GABA activity and so slows the activity of neurons in the brain
- Caffeine, which mainly blocks adenosine receptors and so reduces tiredness without a direct dopamine effect
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A drug that enhances GABA activity would most likely produce which effect?
- Increased serotonin release, leading to elevated mood and increased energy in the user of the drug
- Slowed neural activity, leading to sedation and reduced anxiety
- Increased dopamine release, leading to a strong sense of reward and pleasure in the user of the drug
- Increased neural activity, leading to stimulation, alertness and faster reactions in most users
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Why might drugs that affect neurotransmission produce changes in behaviour?
- Because they alter the hormones in the blood, which have no effect on neurons in the brain at all
- Because they alter the size of the brain, which changes the speed of all behaviour in the body
- Because they alter the genetic code of neurons, which changes their behaviour permanently in every case
- Because they alter the signals between neurons, which changes the activity of brain networks
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Which of these describes a drug that increases serotonin activity in the synapse?
- A drug that breaks down the myelin sheath, so serotonin cannot travel along the axon of any neuron
- A drug that increases serotonin release or blocks its reuptake, such as ecstasy
- A drug that enhances GABA and slows the brain, with no effect on serotonin at any stage of its action
- A drug that blocks serotonin receptors completely, so no serotonin can bind to them at any synapse
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Which evaluation point is most relevant to research on the effects of recreational drugs?
- Ethical issues arise, since drugs cannot be given to participants for research in many countries
- Research on drugs can be done only with animals, so the effects on humans are never studied in any way
- Research on drugs is always fully ethical, since participants are never harmed by any recreational drug
- Research on drugs is always unethical, so no evidence about the effects of drugs has ever been collected at all
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A user of cocaine shows increased activity in reward pathways. Which explanation is most accurate?
- Dopamine is removed quickly, so receptors are stimulated for a shorter time by the dopamine released
- Dopamine remains in the synapse longer, so receptors are stimulated for longer by the dopamine
- Dopamine is destroyed by the myelin sheath, so the reward signal is stopped as soon as it is released
- Dopamine is converted into GABA, so the inhibitory effect of the reward signal is increased in the brain
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Which of these is a limitation of research on the effects of drugs on the brain?
- Drug effects are always identical in every person, so findings always apply to every individual perfectly
- Drug effects can be measured only by asking users what they feel, so the data are always fully objective
- Drug effects are always visible on a standard blood test, so no measurement error can affect the data at all
- Drug effects vary between individuals, so findings may not apply to everyone who uses the drug
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What is the role of the synapse in the effects of recreational drugs?
- Drugs act only on the cell body, which has no role in synapses or in transmitter release at any point
- Drugs act only on the bloodstream, which has no effect on the synapse or on neurotransmitter activity
- Drugs act only on the myelin sheath, which has no link to neurotransmitter release or reuptake at all
- Drugs act at the synapse to change neurotransmitter release, reuptake or receptor binding
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Which statement about dopamine and reward is most accurate?
- Dopamine is linked to reward and motivation, and drugs that increase it can strengthen reward-related behaviour
- Dopamine is linked only to sleep, and drugs that increase it have no effect on reward-related behaviour at all
- Dopamine is linked only to the cell body, and drugs that increase it have no effect on any synapse at all
- Dopamine is linked only to the myelin sheath, and drugs that increase it have no effect on the brain at all
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Which of these best describes how a neurotransmitter's effect is ended after it acts on a receptor?
- It is removed from the cleft by reuptake or enzymatic breakdown, which ends the signal
- It is stored in the cell body for later use, so the signal is paused until the neuron fires again
- It is converted into a hormone in the myelin sheath, so the signal continues in the bloodstream
- It remains bound to the receptor forever, so the signal never ends once it has started in the neuron
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Which drug is most likely to produce a sedative effect by enhancing an inhibitory neurotransmitter?
- Amphetamine, which increases the release of dopamine and noradrenaline and so speeds up neural activity
- Alcohol, which enhances GABA activity and so slows neural activity
- Cocaine, which blocks dopamine reuptake and so prolongs the excitatory effect of dopamine in reward pathways
- Ecstasy, which increases serotonin release and blocks its reuptake, increasing serotonin activity in the synapse
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A drug is found to increase noradrenaline release in the synapse. Which effect would be most expected?
- Increased sleepiness, since noradrenaline blocks the release of dopamine from neurons in the reward pathways
- No change in arousal, since noradrenaline has no effect on the activity of neurons in the brain at any time
- Decreased arousal and deeper sleep, as noradrenaline is a sedative that slows neurons across the brain
- Increased arousal and alertness, as noradrenaline increases the activity of many neurons in the brain
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Which of these is the best reason that recreational drugs are studied with caution in research?
- Because drugs have no effect on the brain, so research on them is pointless and should not be carried out at all
- Because drugs always have identical effects on all people, so participants must be tested with the same drug
- Because drugs only affect the myelin sheath, which can be studied only with a microscope in the laboratory
- Because giving drugs to participants raises ethical concerns about harm, so research often relies on other evidence
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A user of ecstasy reports low mood after the effects wear off. Which explanation is most consistent with serotonin's role?
- Serotonin is converted into GABA after the drug wears off, so the low mood is caused by sedation from GABA
- Serotonin levels may be depleted after heavy release, so mood can fall once the drug's effect ends
- Serotonin is absorbed into the myelin sheath, so the low mood is caused by slower conduction along the axon
- Serotonin levels are increased for days afterwards, so the low mood is caused by excess serotonin in the blood
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Which of these describes a difference between an agonist and an antagonist drug at a receptor?
- An agonist removes the myelin sheath, while an antagonist removes the terminal buttons from the neuron in the brain
- An agonist destroys the receptor permanently, while an antagonist only changes the colour of the neuron's membrane
- An agonist blocks the receptor completely, while an antagonist activates the receptor more than the transmitter does
- An agonist activates the receptor like the natural transmitter, while an antagonist blocks it from being activated
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Which statement about drug effects on synapses is most accurate?
- A drug can change the release, reuptake or breakdown of a neurotransmitter, or its binding to receptors
- A drug can only change the speed of the bloodstream, which has no effect on any synapse in the body at any stage
- A drug can only change the size of the cell body, which has no effect on neurotransmitter release at all
- A drug can only change the colour of the myelin sheath, which has no effect on neurotransmission in the brain
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