Lesson 7.1.2
7.1.2 Sliding filament theory of muscle contraction Quiz: Pearson Edexcel Biology A (Salters-Nuffield), Unit 7
20 questions
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Lesson 7.1.2, Sliding filament theory of muscle contraction: 20 multiple choice questions for the Pearson Edexcel Biology A (Salters-Nuffield) (9BI0), Unit 7: Run for your Life, written with Revision Ninja.
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The 20 questions
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Which molecule binds to the myosin head and causes it to detach from actin during the cycle of contraction?
- Calcium ions, which bind to the myosin head and hold it firmly onto the actin filament
- Tropomyosin, which binds to the myosin head and prevents it from detaching from actin
- ATP, which binds to the myosin head and causes it to release from the actin filament
- Troponin, which binds to myosin and drives the power stroke that moves the filament
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What is the role of calcium ions in the contraction of skeletal muscle?
- They bind directly to the myosin head, which prevents it from attaching to the actin filament
- They act as the energy source for the power stroke, replacing ATP in the myosin head
- They bind to troponin, which moves tropomyosin and exposes the binding sites on actin
- They bind to the Z line and pull the sarcomere apart, lengthening the muscle fibre
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In the sliding filament theory, which change occurs in the sarcomere during contraction?
- The actin and myosin filaments both shorten, so the A band becomes twice as long
- The H zone and I band shorten, while the A band stays the same length
- The A band shortens, while the H zone and I band stay the same length
- The myosin filaments slide to the outside of the sarcomere, so the Z lines move apart
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During the power stroke, what happens to the myosin head?
- It pivots, pulling the actin filament towards the centre of the sarcomere after ADP and phosphate are released
- It detaches from the actin, which is then pulled towards the outside of the sarcomere by ATP
- It attaches to troponin, which then moves the tropomyosin away from the calcium-binding site
- It splits ATP into ADP and phosphate, which releases energy that lengthens the sarcomere
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The enzyme ATPase in muscle is needed to:
- Synthesise ATP from ADP and phosphate, which is used to attach the myosin head to troponin
- Break the bonds between actin and tropomyosin, which releases calcium into the sarcoplasm
- Digest the sarcolemma so that the calcium ions can enter the muscle fibre during relaxation
- Hydrolyse ATP to ADP and phosphate, providing energy to recock the myosin head
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Which structure in the muscle fibre stores calcium ions for release during contraction?
- The T-tubules, which store calcium ions permanently and release them during rest
- The sarcoplasmic reticulum
- The sarcolemma, which stores calcium ions in the outer membrane of the muscle fibre
- The myofibrils, which contain calcium ions in their actin and myosin filaments
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Why does a muscle relax after a contraction?
- Troponin is activated by ATP and so pulls the tropomyosin into the Z line, lengthening the sarcomere
- Calcium ions are released from the myosin head, which then binds to the sarcolemma to block contraction
- ATP is used to split the actin filaments into smaller fragments, which stops the cross-bridge cycle
- Calcium ions are pumped back into the sarcoplasmic reticulum
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Which molecules form the thick and thin filaments of a myofibril?
- Haemoglobin forms the thick filament and keratin forms the thin filament in the sarcoplasm
- Collagen forms the thick filament and elastin forms the thin filament along the Z lines
- Actin forms the thick filament and myosin forms the thin filament, with troponin in the middle
- Myosin forms the thick filament and actin forms the thin filament
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Which best explains why a muscle cannot contract without ATP?
- ATP is needed to bind calcium to troponin, which then causes the sarcomere to shorten by itself
- ATP is needed to detach the myosin head from actin, and to recock it for the next power stroke
- ATP is needed to make the sarcolemma permeable, so the sarcoplasmic reticulum can release calcium
- ATP is needed only to start the first contraction, after which the muscle contracts with no further energy
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Which event directly triggers the release of calcium from the sarcoplasmic reticulum?
- An action potential travelling along the axon of the motor neurone to the nucleus of the fibre
- A rise in ATP concentration inside the sarcoplasm, which causes the reticulum to release calcium
- A fall in the pH of the blood, which causes the reticulum to open and release calcium into the fibre
- An action potential travelling down the T-tubules
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A fibre has its troponin mutated so that it cannot bind calcium. Which result is most likely?
- The fibre contracts continuously, because tropomyosin is permanently removed from the actin
- The fibre cannot contract, because tropomyosin continues to block the actin binding sites
- The fibre contracts normally, because calcium can bind directly to the myosin head instead
- The fibre lengthens, because the mutation causes the sarcomere to stretch to its maximum length
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Which statement describes the role of tropomyosin in the resting muscle fibre?
- It blocks the myosin binding sites on actin so that no cross-bridges form
- It binds to the ATP molecules, which prevents them from being hydrolysed by ATPase
- It blocks the calcium channels in the sarcolemma, so calcium cannot leave the reticulum
- It binds to the myosin head and cocks it so that it is ready for the power stroke
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During muscle contraction, how many ATP molecules are hydrolysed per cross-bridge cycle at minimum?
- At least one, since each cycle requires ATP to detach the myosin head and to recock it
- Exactly two, since one ATP is used per calcium ion that binds troponin in each cycle
- None, since the energy comes from the calcium ions that bind to troponin during contraction
- Exactly four, since each actin subunit binds two calcium ions and one ATP molecule
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Which statement evaluates the claim that muscles shorten because the filaments themselves shorten?
- The claim is inaccurate, since the filaments keep their lengths and slide past each other to shorten the sarcomere
- The claim is inaccurate, since muscles shorten by swelling in volume, not by any change in length
- The claim is accurate, since calcium ions shorten the filaments by breaking their protein chains
- The claim is accurate, since the actin and myosin filaments both contract to half their length
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Which feature of the sarcomere helps to define its structure?
- The sarcolemma, which is a single membrane that surrounds the whole sarcomere in every muscle
- The Z lines, which mark the boundaries of each sarcomere and anchor the thin filaments
- The nuclei, which are found between each pair of thick filaments in the sarcomere
- The mitochondria, which fill the sarcomere and are the sites of the cross-bridge attachment
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Which event immediately follows the power stroke in the cross-bridge cycle?
- Myosin splits ATP while still attached to actin, so that the power stroke repeats without release
- Tropomyosin moves back over the binding sites on actin, which is the cause of the power stroke
- ATP binds to the myosin head, which causes it to detach from the actin filament
- Calcium binds to the myosin head, which locks it firmly onto the actin filament
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Where does cross-bridge formation take place in the sarcomere?
- Between the Z lines and the myosin tails, which are anchored to the sarcolemma of the fibre
- Between the folds of the sarcolemma and the myosin heads, which are anchored by collagen
- Between tropomyosin strands projecting from the thin filament and binding sites on the myosin
- Between myosin heads projecting from the thick filament and binding sites on the actin of the thin filament
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A sarcomere shortens from 2.4 micrometres to 1.8 micrometres during contraction. What is the percentage shortening?
- 0.6%, since 2.4 minus 1.8 gives 0.6 and this is the percentage directly
- 75%, since 1.8 divided by 2.4 gives 0.75 and the shortening is 75%
- 33%, since (2.4 - 1.8)/1.8 x 100 is approximately 33
- 25%, since (2.4 - 1.8)/2.4 x 100 = 25
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Which statement about the H zone during full contraction is correct?
- It moves to the centre of the sarcomere and doubles in length as the sarcomere shortens
- It stays the same width because it contains only actin filaments, which do not move
- It becomes narrower and may disappear, because thin filaments overlap across it
- It becomes wider because the myosin filaments are pulled apart by the contracting actin
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Myosin heads bound to actin with no ATP present are in which state?
- The detached state, in which the head is free to bind calcium ions in the sarcoplasm
- The relaxed state, in which tropomyosin blocks binding even though ATP is abundant
- The cocked state, in which ATP has been hydrolysed and the head is ready to bind actin
- The rigor state, in which cross-bridges stay locked because the heads cannot detach
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