Unit 4: Mechanics of skeletal muscle - Practice Quiz

BTY730 — Biomechanics 60 Questions
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1 What is the basic structural and functional unit of a skeletal muscle?

structure of skeletal muscle Easy
A. Tendon
B. Fascia
C. Muscle fiber
D. Ligament

2 The connective tissue sheath that surrounds an entire skeletal muscle is called the:

structure of skeletal muscle Easy
A. Epimysium
B. Sarcolemma
C. Perimysium
D. Endomysium

3 A bundle of muscle fibers grouped together is known as a:

structure of skeletal muscle Easy
A. Filament
B. Sarcomere
C. Fascicle
D. Myofibril

4 The cell membrane of a muscle fiber is specifically called the:

muscle fibers Easy
A. Sarcoplasmic reticulum
B. Sarcoplasm
C. Sarcomere
D. Sarcolemma

5 The functional contractile unit of a myofibril, located between two Z-lines, is the:

muscle fibers Easy
A. Motor unit
B. Endomysium
C. Fascicle
D. Sarcomere

6 Which two protein filaments are the main contractile proteins in a muscle fiber?

muscle fibers Easy
A. Collagen and elastin
B. Actin and myosin
C. Keratin and albumin
D. Troponin and titin

7 A motor unit consists of a single motor neuron and:

motor units Easy
A. A single muscle fiber only
B. The entire muscle
C. One sarcomere
D. All the muscle fibers it innervates

8 Muscles requiring fine, precise control (such as eye muscles) typically have motor units with:

motor units Easy
A. Many muscle fibers per neuron
B. Few muscle fibers per neuron
C. Only slow fibers
D. No motor neurons

9 The point where a motor neuron communicates with a muscle fiber is called the:

motor units Easy
A. Neuromuscular junction
B. Z-line
C. Sarcomere
D. H-zone

10 Which fiber type is best suited for prolonged, low-intensity endurance activity?

structure of skeletal muscle-fiber types Easy
A. Cardiac fibers
B. Type IIx (fast-twitch)
C. Type IIb (fast-twitch)
D. Type I (slow-twitch)

11 Fast-twitch (Type II) muscle fibers are characterized by:

structure of skeletal muscle-fiber types Easy
A. High myoglobin and slow speed
B. No contraction ability
C. Slow contraction and high endurance
D. Fast contraction and quick fatigue

12 Which fiber type generally contains a higher amount of myoglobin, giving it a red appearance?

structure of skeletal muscle-fiber types Easy
A. Type IIb (fast-twitch)
B. Type IIx (fast-twitch)
C. Type I (slow-twitch)
D. White fibers

13 In which muscle fiber arrangement do the fibers run parallel to the long axis of the muscle?

fiber architecture Easy
A. Multipennate
B. Bipennate
C. Parallel (fusiform)
D. Unipennate

14 Pennate muscle architecture is associated with:

fiber architecture Easy
A. Lower fiber count
B. Greater force production
C. Slower fatigue only
D. Greater range of motion

15 A muscle with fibers attaching to a central tendon on both sides is described as:

fiber architecture Easy
A. Fusiform
B. Parallel
C. Unipennate
D. Bipennate

16 According to the sliding filament theory, muscle contraction occurs when:

sliding element theory of skeletal muscle Easy
A. Sarcomeres are destroyed
B. Filaments themselves shorten
C. Actin filaments slide over myosin filaments
D. Z-lines lengthen

17 During muscle contraction under the sliding filament theory, what happens to the distance between Z-lines?

sliding element theory of skeletal muscle Easy
A. It increases
B. It doubles
C. It decreases
D. It stays the same

18 Which ion must be released to trigger the interaction between actin and myosin during contraction?

contraction of skeletal muscle Easy
A. Sodium ()
B. Iron ()
C. Calcium ()
D. Chloride ()

19 Which molecule provides the energy required for the myosin cross-bridge cycle?

contraction of skeletal muscle Easy
A. Lactic acid
B. Glucose only
C. ATP
D. DNA

20 Hill's three-element muscle model includes a contractile element plus which two other elements?

hill's three element model Easy
A. A rigid bone and a joint
B. Series and parallel elastic elements
C. Two damping elements
D. Two contractile elements

21 A muscle biopsy shows connective tissue layers surrounding individual muscle fibers, bundles of fibers, and the entire muscle. Which layer directly surrounds a single muscle fiber?

structure of skeletal muscle Medium
A. Endomysium
B. Epimysium
C. Perimysium
D. Fascia lata

22 The functional contractile unit of a skeletal muscle fiber, defined as the region between two adjacent Z-lines, is called the:

structure of skeletal muscle Medium
A. Sarcolemma
B. Triad
C. Sarcoplasm
D. Sarcomere

23 During contraction, which band of the sarcomere remains constant in width while others shorten?

structure of skeletal muscle Medium
A. Both I-band and H-zone
B. I-band
C. H-zone
D. A-band

24 The specialized smooth endoplasmic reticulum in a muscle fiber that stores and releases for contraction is the:

muscle fibers Medium
A. Sarcolemma
B. Transverse tubule
C. Myofibril
D. Sarcoplasmic reticulum

25 The thin filament of a muscle fiber is composed primarily of which protein?

muscle fibers Medium
A. Myosin
B. Tropomyosin only
C. Actin
D. Titin

26 A motor unit is best defined as:

motor units Medium
A. The neuromuscular junction and its acetylcholine receptors
B. A single motor neuron and all the muscle fibers it innervates
C. A single muscle fiber and its surrounding capillaries
D. A group of sarcomeres within one myofibril

27 Muscles requiring fine, precise control (e.g., extraocular eye muscles) typically have motor units with:

motor units Medium
A. Only slow-twitch fibers
B. A low innervation ratio (few fibers per neuron)
C. No neuromuscular junctions
D. A high innervation ratio (many fibers per neuron)

28 According to Henneman's size principle, motor units are recruited in what order as force demand increases?

motor units Medium
A. Randomly, independent of force requirement
B. All units simultaneously at maximal rate
C. Smallest (low-threshold) units first, then progressively larger units
D. Largest units first, then smaller units

29 Which fiber type is characterized by high oxidative capacity, high fatigue resistance, and slow contraction speed?

structure of skeletal muscle-fiber types Medium
A. Type IIx (fast glycolytic)
B. Type I (slow oxidative)
C. Type IIa (fast oxidative-glycolytic)
D. Type IIb (fast glycolytic)

30 A sprinter's muscles are dominated by fibers that generate high force rapidly but fatigue quickly. These are most likely:

structure of skeletal muscle-fiber types Medium
A. Type I slow oxidative fibers
B. Cardiac muscle fibers
C. Intrafusal fibers
D. Type IIx fast glycolytic fibers

31 Which property is generally HIGHER in Type I fibers compared to Type II fibers?

structure of skeletal muscle-fiber types Medium
A. Mitochondrial density
B. Fiber diameter
C. Glycolytic enzyme content
D. Contraction velocity

32 In a pennate muscle, the muscle fibers are arranged at an angle to the tendon. This angle is known as the:

fiber architecture Medium
A. Pennation angle
B. Insertion angle
C. Fascicle angle of incidence
D. Angle of pull

33 Compared to fusiform muscles of equal volume, pennate muscles typically produce:

fiber architecture Medium
A. Lower force but the same range of motion
B. Identical force and velocity characteristics
C. Greater maximal force due to larger physiological cross-sectional area
D. Greater shortening velocity due to longer fibers

34 The maximum force a muscle can produce is most directly proportional to its:

fiber architecture Medium
A. Fiber length
B. Physiological cross-sectional area (PCSA)
C. Total muscle length
D. Tendon stiffness

35 According to the sliding filament theory, muscle shortening occurs because:

sliding element theory of skeletal muscle Medium
A. Both actin and myosin filaments physically shorten in length
B. Z-lines dissolve and reassemble farther apart
C. The A-band shortens while the I-band lengthens
D. Thin filaments slide over thick filaments toward the center of the sarcomere

36 During the cross-bridge cycle, the power stroke that pulls the thin filament is powered by:

sliding element theory of skeletal muscle Medium
A. Hydrolysis of ATP and release of ADP + from the myosin head
B. Binding of to the myosin head directly
C. Passive recoil of titin filaments
D. Repolarization of the sarcolemma

37 At very long sarcomere lengths, active tension decreases because:

sliding element theory of skeletal muscle Medium
A. Too many cross-bridges form and jam the filaments
B. There is reduced overlap between actin and myosin, limiting cross-bridge formation
C. Calcium can no longer be released from the sarcoplasmic reticulum
D. The thick filaments buckle against the Z-lines

38 A muscle contracting while lengthening under load (e.g., lowering a heavy weight slowly) is performing what type of action?

skeletal muscle function Medium
A. Isometric contraction
B. Concentric contraction
C. Isokinetic relaxation
D. Eccentric contraction

39 In the force-velocity relationship of skeletal muscle, as the velocity of concentric shortening increases, the force the muscle can generate:

contraction of skeletal muscle Medium
A. First increases then plateaus
B. Decreases
C. Remains constant
D. Increases proportionally

40 In Hill's three-element model of muscle, which component represents the active force generator?

hill's three element model Medium
A. The contractile element (CE)
B. The parallel elastic element (PEE)
C. The series elastic element (SEE)
D. The viscous damping element

41 A pennate muscle has a physiological cross-sectional area (PCSA) that is 3 times its anatomical cross-sectional area (ACSA), with a pennation angle of . Compared to a fusiform muscle of identical volume and fiber length, what is the approximate ratio of the pennate muscle's effective force transmitted along the tendon to the fusiform muscle's force?

fiber architecture Hard
A.
B.
C.
D.

42 According to the sliding filament theory, during isometric contraction at optimal sarcomere length, which structural observation would be experimentally expected?

sliding element theory of skeletal muscle Hard
A. The A-band width remains constant while I-band and H-zone are minimized but non-zero
B. The H-zone widens as thick filaments compress toward the M-line
C. Actin filaments physically shorten while myosin length stays fixed
D. Both A-band and I-band shorten proportionally as cross-bridges cycle

43 In Hill's three-element model, a muscle is held at constant total length while the contractile element (CE) shortens. What must occur in the series elastic component (SEC) and why?

hill's three element model Hard
A. The SEC dissipates energy as heat with no length change
B. The SEC shortens equally, keeping total tension zero
C. The SEC remains at fixed length while the parallel element bears all load
D. The SEC stretches by an amount equal to CE shortening, storing elastic energy

44 The Hill force-velocity equation is . If and the muscle contracts at , what fraction of maximum isometric force is produced?

contraction of skeletal muscle Hard
A.
B.
C.
D.

45 According to the size principle (Henneman), during a graded increase in force, motor units are recruited in a specific order. Which combination correctly describes the earliest recruited units?

motor units Hard
A. Large soma, high threshold, fast twitch, fatigable
B. Small soma, low threshold, slow twitch, fatigue-resistant
C. Small soma, high threshold, fast twitch, fatigue-resistant
D. Large soma, low threshold, slow twitch, fatigable

46 Two athletes are tested: sprinter X shows high glycolytic enzyme activity and low myoglobin; endurance runner Y shows high oxidative capacity and dense capillarization. Which fiber-type dominance and metabolic edge case best explains a Type IIx-to-IIa shift in Y after prolonged endurance training?

structure of skeletal muscle-fiber types Hard
A. Capillarization forces IIa fibers to become purely anaerobic IIx
B. Chronic activity converts fast-fatigable IIx toward more oxidative, fatigue-resistant IIa fibers
C. Type IIa fibers convert into Type I fibers gaining glycolytic capacity
D. Endurance training converts Type I fibers into Type IIx to increase power

47 On the length-tension curve, a sarcomere at produces near-zero active tension. Given thick filament length and thin filament length each side, what is the biomechanical reason?

sliding element theory of skeletal muscle Hard
A. Thin filaments overlap the M-line causing double-overlap interference
B. Thick filaments compress against the Z-discs limiting motion
C. Thin and thick filaments no longer overlap, so no cross-bridges can form
D. Excess calcium saturates troponin blocking cross-bridge cycling

48 A quick-release experiment is performed on a maximally activated muscle. Immediately after release, tension drops instantaneously then redevelops. Which element accounts for the instantaneous drop?

hill's three element model Hard
A. Series elastic component recoiling upon sudden length change
B. Damping viscosity of the sarcoplasm
C. Parallel elastic component stretching abruptly
D. Contractile element failing to generate force

49 In excitation-contraction coupling, a defect prevents the DHP receptor from mechanically coupling to the ryanodine receptor. What is the most direct functional consequence?

muscle fibers Hard
A. Failure of acetylcholine release at the neuromuscular junction
B. Excess reuptake preventing relaxation
C. Failure of release from the sarcoplasmic reticulum despite T-tubule depolarization
D. Inability to repolarize the sarcolemma after an action potential

50 A muscle has fiber length , whole-muscle length , and shortens as a whole by . Assuming uniform fibers in series arrangement effects, what is the strain experienced by each fiber if the architectural gear ratio (AGR) equals 1?

fiber architecture Hard
A.
B.
C.
D.

51 During an eccentric contraction, muscle produces higher force than during isometric or concentric conditions at the same activation. Which combined mechanism best explains this enhanced force?

skeletal muscle function Hard
A. Increased calcium sensitivity from shortening velocity alone
B. Reduced cross-bridge number offset by faster ATP hydrolysis
C. Forced detachment of strained cross-bridges plus passive contribution of titin stiffening
D. Complete filament separation reducing internal resistance

52 A motor unit is stimulated at increasing frequencies. At twitches partially summate (unfused tetanus); at force plateaus (fused tetanus). What determines the critical frequency for fusion?

contraction of skeletal muscle Hard
A. The velocity of the action potential along the axon
B. The relationship between the stimulus interval and the twitch's total contraction-plus-relaxation time
C. The absolute refractory period of the sarcolemma only
D. The resting membrane potential of the motoneuron

53 Ranking connective tissue layers from innermost to outermost and their mechanical role, which sequence is correct?

structure of skeletal muscle Hard
A. Endomysium (fiber) perimysium (fascicle) epimysium (whole muscle)
B. Epimysium (fiber) perimysium (fascicle) endomysium (whole muscle)
C. Perimysium (fiber) endomysium (fascicle) epimysium (whole muscle)
D. Endomysium (fascicle) epimysium (fiber) perimysium (whole muscle)

54 In a Hill model where the parallel elastic component (PEC) is arranged parallel to the CE-SEC series unit, at a length below slack length what is the PEC's contribution to total tension?

hill's three element model Hard
A. Zero, because the PEC only bears tension when stretched beyond slack length
B. Equal to the CE tension, sharing load proportionally
C. Negative, because it pushes inward against the CE
D. Maximal, because slack fibers store the most elastic energy

55 A muscle produces force by both recruitment and rate coding. In small muscles (e.g., hand intrinsics), recruitment is complete at a relatively low percentage of maximum force. Beyond this, how is additional force primarily generated?

motor units Hard
A. By decreasing the twitch relaxation time to zero
B. By lengthening individual sarcomeres past optimum
C. By recruiting entirely new fiber types not previously present
D. By increasing the firing rate (rate coding) of already-recruited motor units

56 The descending limb of the length-tension curve is considered mechanically unstable in an isolated fiber. What is the biomechanical basis for this instability?

sliding element theory of skeletal muscle Hard
A. Increased calcium sensitivity destabilizes cross-bridge kinetics
B. Longer sarcomeres are weaker, so they yield and lengthen further while shorter ones shorten, amplifying non-uniformity
C. All sarcomeres shorten equally, producing uniform tension collapse
D. Titin fully detaches removing all passive restoring force

57 During the cross-bridge cycle, rigor mortis occurs because of a specific biochemical state. Which condition traps the myosin head?

contraction of skeletal muscle Hard
A. High calcium permanently blocks troponin exposure
B. Depleted calcium keeps tropomyosin off the binding sites
C. Absence of ATP prevents cross-bridge detachment, locking heads to actin
D. Excess ATP over-drives detachment freezing the cycle

58 Two muscles have equal volume and PCSA. Muscle A has short fibers with high pennation; Muscle B has long parallel fibers. Which statement about their functional specialization is correct?

fiber architecture Hard
A. A produces higher shortening velocity due to more sarcomeres in series
B. A specializes in high force and low excursion; B specializes in high excursion and shortening velocity
C. Both produce identical force and velocity since PCSA is equal
D. A specializes in high excursion; B specializes in high force output

59 A biarticular muscle can transfer power between joints without net length change—a phenomenon exploited in jumping. What property allows this energy transfer despite minimal contractile work?

skeletal muscle function Hard
A. The muscle rapidly changes fiber type mid-movement
B. Cross-bridges detach completely, storing energy in actin
C. The muscle acts nearly isometrically while tendon elasticity transfers power between the two joints it spans
D. The parallel elastic component generates active force

60 During tetanic stimulation, calcium accumulates in the cytosol because reuptake by SERCA cannot keep pace. If SERCA activity is pharmacologically inhibited during a single twitch, what is the predicted effect on the twitch profile?

muscle fibers Hard
A. Prolonged relaxation phase because cytosolic clearance is delayed
B. Faster contraction with no change in relaxation
C. No change because SERCA acts only during tetanus
D. Immediate reduction in peak force with faster relaxation