Lesson 3.6.2.1.1
3.6.2.1.1 Resting potential and the action potential Quiz: AQA Biology, Unit 6
20 questions
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Lesson 3.6.2.1.1, Resting potential and the action potential: 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
-
What is the approximate value of the resting potential of a neurone?
- +40 mV
- -20 mV
- -70 mV
- 0 mV
-
Which ion is at a higher concentration outside the neurone at rest?
- Potassium
- Chloride inside only
- Sodium
- Calcium inside only
-
At rest, the membrane of a neurone is more permeable to which ion?
- Magnesium
- Potassium
- Sodium
- Calcium
-
What is depolarisation in a neurone?
- The release of neurotransmitter into a synapse
- A change making the inside more negative than at rest
- The return of the membrane to its resting potential
- A change in membrane potential, making the inside less negative as sodium ions enter
-
What does the all-or-nothing principle mean for an action potential?
- An action potential occurs only when the stimulus is removed
- The size of an action potential depends on the strength of the stimulus
- An action potential either occurs fully, when threshold is reached, or does not occur at all
- An action potential is produced continuously while a stimulus is present
-
What structure in a myelinated motor neurone speeds up nerve impulses?
- The sarcoplasmic reticulum
- The cell body only
- The myelin sheath with nodes of Ranvier
- The synaptic knob
-
Which process restores the resting potential after depolarisation?
- Repolarisation, as potassium ions leave the cell through potassium channels
- Photolysis of water
- Acetylcholine binding to the post-synaptic membrane
- Sodium ions entering the cell through sodium channels
-
Why is sodium influx during an action potential driven by both concentration and electrical gradients?
- Sodium is pushed out of the cell by an electrical gradient
- Sodium is more concentrated outside and the inside is negative, so sodium is pulled inwards
- Sodium is more concentrated inside and the inside is positive
- Sodium is always stored in the myelin sheath
-
A stimulus is 20% above threshold. What is the size of the resulting action potential?
- Twenty per cent larger than the threshold response
- The same as a stimulus just above threshold, because the response is all or nothing
- Zero, because stimuli above threshold do not produce action potentials
- Half the normal size, to protect the neurone
-
A neurone's membrane moves from -70 mV to +40 mV at the peak of an action potential. What is the total change in potential?
- 40 mV
- 30 mV
- 70 mV
- 110 mV
-
Which mechanism maintains the concentration differences of sodium and potassium across the membrane?
- The sodium-potassium pump, which moves three sodium ions out for every two potassium ions in
- The myelin sheath, which holds the ions in place
- Photosynthesis, which generates the ion gradients
- Acetylcholinesterase, which breaks down the ions
-
Why does saltatory conduction increase the speed of a nerve impulse?
- The impulse is faster because the axon has no membrane
- The impulse jumps from node to node, so depolarisation happens only at the nodes
- The impulse travels through the myelin sheath without any ions
- The impulse is faster because the sodium pump works more slowly
-
Why does a larger axon diameter increase the speed of conduction?
- There are more sodium pumps per unit area
- There is less resistance to the flow of local currents along the axon
- The resting potential is larger
- There is more myelin on the axon
-
How does a fall in temperature affect the speed of conduction along a neurone?
- It slows conduction, because ion movement and channel activity become slower
- It has no effect because conduction does not involve ion movement
- It speeds conduction, because cold makes ions move faster
- It stops conduction permanently
-
Why is the inside of a neurone negative at rest, even though small numbers of ions move across the membrane?
- The sodium-potassium pump moves more sodium out than potassium in, and the membrane leaks more potassium out
- The inside of a neurone contains no ions at all
- The resting neurone has no membrane
- The outside of the neurone is strongly negative
-
Which change in membrane permeability causes depolarisation?
- A large increase in permeability to potassium ions
- A large increase in permeability to sodium ions
- A large decrease in permeability to all ions
- A change in permeability only to chloride ions
-
A nerve impulse is transmitted with a constant size, but a strong stimulus produces more impulses per second. How is stimulus intensity signalled?
- By the size of each action potential
- By the speed of the cell body
- By the frequency of action potentials
- By the number of myelin sheaths
-
Loss of the myelin sheath in disease would most likely cause what change in nerve conduction?
- No change, because myelin does not affect conduction
- A larger resting potential
- Slower conduction, because saltatory conduction is lost
- Faster conduction, because the axon becomes more permeable
-
Which ion channels open first during the depolarisation phase of an action potential?
- Voltage-gated sodium channels
- Chloride channels only
- Calcium channels in the myelin sheath
- Potassium channels in the myelin sheath
-
Which statement correctly describes hyperpolarisation?
- The inside of the membrane becomes more negative than the resting potential
- The inside of the membrane becomes less negative than the resting potential
- The membrane returns to resting potential in a single step
- Sodium ions are pumped into the cell by the membrane
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