Lesson 3.6.2.1.2
3.6.2.1.2 Refractory period and transmission of nerve impulses Quiz: AQA Biology, Unit 6
20 questions
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Lesson 3.6.2.1.2, Refractory period and transmission of nerve impulses: 20 multiple choice questions for the AQA Biology (7402), Unit 6: Organisms respond to changes in their internal and external environments, written with Revision Ninja.
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The 20 questions
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What is the refractory period of a neurone?
- A period after an action potential when the membrane cannot fire again, or needs a stronger stimulus to do so
- The period during which the neurone is at its resting potential only
- The time taken for a neurotransmitter to cross the synaptic cleft
- The time taken for a muscle to contract after a stimulus
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Why does the refractory period make nerve impulses discrete?
- It increases the size of each action potential
- It separates successive action potentials so that they are transmitted as distinct impulses
- It makes all impulses travel at the same speed
- It prevents depolarisation from ever starting
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Which role does the refractory period play in transmission of impulses?
- It limits the maximum frequency at which impulses can be transmitted
- It makes impulses travel in both directions
- It stops the impulse reaching the synapse
- It increases the speed of impulses above the maximum
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Why can an impulse travel in only one direction along an axon?
- Potassium ions travel only forwards along the axon
- Myelin prevents depolarisation in both directions
- The region behind the moving impulse is refractory and cannot be depolarised again
- The sodium pump moves ions in one direction only
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Which three factors affect the speed of conduction along a neurone?
- Axon length, number of synapses and colour of the axon
- Myelination, axon diameter and temperature
- Receptor number, hormone levels and blood pressure
- Myelination, number of mitochondria and pH only
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What is saltatory conduction?
- The jumping of neurotransmitter across a synaptic cleft
- The jumping of an action potential from one node of Ranvier to the next along a myelinated axon
- The movement of sodium ions through the sodium pump
- The rapid movement of an impulse through blood vessels
-
A neurone has a refractory period of 2 ms. What is the maximum frequency of impulse transmission?
- 500 impulses per second
- 200 impulses per second
- 2 impulses per second
- 0.002 impulses per second
-
A neurone has a refractory period of 5 ms. What is the maximum frequency of impulses?
- 200 impulses per second
- 5 impulses per second
- 500 impulses per second
- 50 impulses per second
-
An impulse travels 1.5 m along an axon in 5 ms. What is the speed of conduction?
- 3000 m per second
- 7.5 m per second
- 0.3 m per second
- 300 m per second
-
An impulse takes 10 ms to travel 2 m along a neurone. What is its speed?
- 0.2 m per second
- 200 m per second
- 5 m per second
- 20 m per second
-
A neurone conducts at 50 m per second. How long does an impulse take to travel 0.5 m?
- 1 ms
- 100 ms
- 10 ms
- 25 ms
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Which combination of features would produce the fastest conduction?
- No myelin, small diameter and a cold temperature
- Myelination, small diameter and a cold temperature
- Myelination, large axon diameter and a warm temperature within the normal range
- No myelin, large diameter and a cold temperature
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Why does a neurone with a longer refractory period have a lower maximum firing frequency?
- Longer refractory periods speed up impulse conduction
- Longer refractory periods make the resting potential more negative
- Each impulse must wait for the refractory period to end before another can be generated
- Longer refractory periods increase the number of sodium pumps
-
Why does cooling a neurone reduce the maximum frequency of impulses it can transmit?
- Cooling makes the resting potential less negative
- Cooling slows the ion movements and channel responses, so the impulse and recovery take longer
- Cooling removes myelin from the axon
- Cooling increases the number of sodium channels
-
Why do myelinated neurones conduct faster without needing a larger diameter?
- Myelin increases the number of sodium channels along the whole axon
- Myelin makes the membrane more permeable to potassium at all points
- Myelin removes the refractory period entirely
- Action potentials are regenerated only at the nodes, so the impulse jumps between them
-
Which statement best explains why a neurone cannot fire a second action potential immediately after the first?
- The sodium pump has been removed from the membrane
- The neurone is full of neurotransmitter
- The membrane is refractory while ion channels reset and the resting potential is restored
- The neurone has used up all its ATP
-
Calculate the maximum frequency of impulses for a neurone whose refractory period is 0.25 ms.
- 0.25 impulses per second
- 250 impulses per second
- 40 impulses per second
- 4000 impulses per second
-
Why is the refractory period described as limiting the frequency of impulse transmission?
- It sets the shortest possible interval between successive action potentials
- It controls the number of synapses in a neurone
- It sets the size of each action potential
- It sets the longest possible interval between successive action potentials
-
A neurone fires at its maximum frequency of 250 impulses per second. What is the minimum time between successive impulses?
- 4 ms
- 250 ms
- 40 ms
- 0.25 ms
-
Which statement about the refractory period is correct?
- It follows each action potential, during which the ion channels reset
- It occurs before each action potential and triggers it
- It is the time taken for a synapse to clear its transmitter
- It is the period during which neurotransmitter is made in the cell body
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