Lesson 7.1.3
7.1.3 Muscle fibre structure, fast and slow twitch fibres Quiz: Pearson Edexcel Biology A (Salters-Nuffield), Unit 7
20 questions
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Lesson 7.1.3, Muscle fibre structure, fast and slow twitch fibres: 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 structural feature is characteristic of a muscle fibre?
- It is a branched cell that has no nucleus and no myofibrils in its cytoplasm
- It is a long, multinucleate cell that contains many myofibrils running along its length
- It is a short, uninucleate cell that contains a single myofibril wrapped around its nucleus
- It is an acellular fibre that is made of collagen and contains no myofibrils at all
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Which fibre type has a greater density of mitochondria and myoglobin, supporting aerobic respiration?
- Fast twitch fibres, which contain more glycolytic enzymes and fatigue quickly during activity
- Slow twitch fibres, which resist fatigue and sustain aerobic activity over long periods
- Slow twitch fibres, which have few capillaries and fatigue rapidly during sustained activity
- Fast twitch fibres, which have a large diameter and a high glycogen content
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Which feature is characteristic of fast twitch muscle fibres?
- A small diameter and dense capillary network, suited to continuous low-intensity contraction
- A high concentration of glycolytic enzymes and glycogen, suited to rapid contraction and anaerobic respiration
- A high concentration of myoglobin and mitochondria, suited to long periods of aerobic exercise
- A large number of slow myosin heads and a low ATPase activity, suited to posture and standing
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Which statement compares fast and slow twitch fibres correctly?
- Fast twitch fibres contract more slowly and resist fatigue, while slow twitch fibres fatigue more quickly
- Fast twitch fibres have more mitochondria than slow twitch fibres, which makes them more fatigue resistant
- Fast and slow twitch fibres have identical contraction speeds, but differ only in colour under the microscope
- Fast twitch fibres contract more rapidly and fatigue faster, while slow twitch fibres contract more slowly and resist fatigue
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Why do slow twitch fibres appear red?
- They contain high levels of glycogen, which is stained red during the preparation of the slide
- They contain high levels of myoglobin, which stores oxygen and gives the muscle a red colour
- They contain high levels of collagen, which is red in colour and makes the fibres appear firm
- They are supplied by fewer capillaries, which makes the fibres look pale and red in colour
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Which structure in a muscle fibre is responsible for conducting the action potential into the centre of the fibre?
- The sarcoplasmic reticulum, which conducts the action potential along its length
- The nuclei, which conduct the action potential from the motor neurone into the fibre
- The myofibrils, which conduct the action potential through the actin filaments
- The T-tubules, which are invaginations of the sarcolemma
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Which feature of fast twitch fibres increases their capacity for rapid calcium release?
- A reduced number of myofibrils, which lets calcium diffuse freely through the cytoplasm
- A thick sarcolemma with very few T-tubules, which slows the release of calcium
- A high density of mitochondria, which absorb calcium and prevent it from being released
- A well-developed sarcoplasmic reticulum, which stores and releases calcium quickly
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Which muscle fibre type is best suited to a marathon runner's leg muscles during a long race?
- Fast twitch fibres, which contract powerfully but fatigue quickly during the long race
- Slow twitch fibres with no mitochondria, which store glycogen for emergency sprinting only
- Fast twitch fibres with very low myoglobin, which conserve energy during the entire race
- Slow twitch fibres, which rely on aerobic respiration and resist fatigue over a long period
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Which muscle fibre type would be most useful for a sprinter's leg muscles in a 100 m race?
- Fast twitch fibres, which generate high power and rely on anaerobic glycolysis for short bursts
- Slow twitch fibres, which generate high power and rely on aerobic respiration for short bursts
- Slow twitch fibres, which have many mitochondria and so release energy most rapidly in short sprints
- Fast twitch fibres with many mitochondria, which allow sustained aerobic work for the full race
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A fibre sample from a muscle has many mitochondria and a dense capillary network. Which fibre type is it most likely to be?
- Fast twitch, since these features show that the fibre is specialised for short bursts of power
- Fast twitch, since these features support rapid contraction through anaerobic respiration
- Neither, since mitochondria and capillaries are found only in the cardiac muscle of the heart
- Slow twitch, since these features support sustained aerobic respiration
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Which statement evaluates the claim that fast twitch fibres are always better for athletic performance?
- The claim is accurate, since slow twitch fibres are never used in any athletic event at all
- The claim is accurate, since fast twitch fibres are better for every type of athletic activity without exception
- The claim is inaccurate, since fast twitch fibres cannot contract at all in any athletic event
- The claim is oversimplified, since the best fibre profile depends on the event, from sprinting to endurance running
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Which statement about fibre type distribution is accurate?
- Fibre type distribution is fixed at birth and cannot change at all with training or exercise
- Every muscle has exactly the same proportion of fast and slow twitch fibres in every person
- Fibre type proportions depend only on the colour of the skin, and not on the function of the muscle
- Fibre type proportions vary between muscles and between individuals
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Why does a slow twitch fibre have more capillaries than a fast twitch fibre?
- To provide a larger surface area for calcium to diffuse out of the sarcoplasmic reticulum
- To remove more lactate from the fibre during intense contraction, which is its main purpose
- To supply more oxygen and glucose to the many mitochondria it contains for aerobic respiration
- To increase the speed of contraction by providing extra blood flow to the myosin heads
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What is the role of myoglobin in a muscle fibre?
- It binds oxygen and stores it within the muscle fibre, supporting aerobic respiration
- It binds calcium ions and holds them in the sarcoplasmic reticulum until contraction begins
- It breaks down ATP to ADP and phosphate, releasing the energy needed for contraction
- It carries oxygen in the blood between the lungs and the muscle, as haemoglobin does in red blood cells
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Which feature is found in both fast and slow twitch fibres?
- Neither fibre type containing a sarcolemma, which is replaced by a cell wall of cellulose
- Slow fibres containing only myosin, while fast fibres contain only actin filaments
- Myofibrils present only in fast twitch fibres, which are absent from slow twitch fibres
- Myofibrils containing actin and myosin arranged into sarcomeres
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Which molecule is abundant in fast twitch fibres and provides a store of glucose for rapid anaerobic respiration?
- Myoglobin, which stores oxygen for prolonged aerobic respiration in slow twitch fibres
- Collagen, which provides tensile strength to the endomysium surrounding each fibre
- Keratin, which forms the protective outer layer of the fibre membrane in all cells
- Glycogen, which is stored in the sarcoplasm and broken down rapidly to supply glucose
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A muscle fibre has high myosin ATPase activity and fatigues quickly. Which fibre type is it most likely to be?
- Slow twitch, since myoglobin is found only in the fast twitch fibres of the body
- Fast twitch, since high ATPase activity and rapid fatigue match the properties of fast fibres
- Neither, since myosin ATPase is absent from all skeletal muscle fibres in the body
- Slow twitch, since high ATPase activity and rapid fatigue match the properties of slow fibres
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One slow twitch fibre contains 400 mitochondria and one fast twitch fibre contains 100. How many times more mitochondria does the slow fibre contain?
- Forty times as many, since 400 divided by 10 gives 40 times the number in the fast fibre
- Three times as many, since 400 minus 100 gives 300 and 300 divided by 100 is 3
- Equal numbers, since mitochondria are not affected by the type of muscle fibre in the body
- Four times as many, since 400 divided by 100 is 4
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Which evidence best supports the claim that the properties of muscle fibres can be altered by training?
- Endurance training increases mitochondrial density and capillary supply within the trained muscle fibres
- Sprint training reduces the diameter of all fibres to the same size across the muscle
- Training increases the number of muscle fibres after the age of 25, so new fibres form throughout life
- Training has no effect on fibre properties and only changes the overall length of the muscle
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Which feature allows slow twitch fibres to keep contracting for long periods?
- A poorly developed sarcoplasmic reticulum that conserves calcium during repeated contractions
- A large number of lactate-producing enzymes that generate ATP without oxygen
- A large diameter and high glycogen store that supports fast anaerobic contractions
- A dense supply of mitochondria and capillaries that sustains aerobic ATP production
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