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Sliding Filament Theory of Muscle Contraction

Total questions: 10

Worksheet time: 5mins

Name
Class
Date
1.

What is the first step in the sliding filament theory of muscle contraction?

a)

Relaxation of the muscle fibers

b)

Contraction of the myosin heads

c)

Release of calcium ions from the sarcoplasmic reticulum

d)

Binding of troponin to tropomyosin

2.

Which protein binds to calcium ions during muscle contraction?

a)

Troponin

b)

Myosin

c)

Calmodulin

d)

Actin

3.

What happens to the myosin heads during the power stroke?

a)

The myosin heads detach from actin filaments.

b)

The myosin heads move away from the center of the sarcomere.

c)

The myosin heads pivot towards the center of the sarcomere.

d)

The myosin heads remain stationary.

4.

What is the role of ATP in muscle contraction according to the sliding filament theory?

a)

ATP is only needed for muscle stretching, not contraction.

b)

ATP causes muscle relaxation instead of contraction.

c)

ATP is produced by actin filaments during muscle contraction.

d)

ATP provides energy for myosin heads to bind, detach, and reset during muscle contraction.

5.

During muscle relaxation, what happens to the actin and myosin filaments?

a)

They contract and bind tightly together.

b)

They remain stationary and do not move.

c)

They disintegrate and break apart.

d)

They slide apart and detach from each other.

6.

What is the function of tropomyosin in muscle contraction?

a)

Initiates muscle contraction

b)

Stabilizes the sarcomere

c)

Regulates the interaction between actin and myosin

d)

Promotes the release of calcium ions

7.

How does the release of calcium ions from the sarcoplasmic reticulum initiate muscle contraction?

a)

Calcium ions activate ATP production, leading to muscle relaxation

b)

Calcium ions inhibit the release of acetylcholine, preventing muscle contraction

c)

Calcium ions bind to myosin, causing actin to move and expose troponin-binding sites

d)

Calcium ions bind to troponin, causing tropomyosin to move and expose myosin-binding sites on actin.

8.

What is the significance of the cross-bridge formation in muscle contraction?

a)

Cross-bridge formation leads to muscle relaxation instead of contraction.

b)

The significance of cross-bridge formation is that it allows for the generation of force and movement in muscle cells.

c)

Cross-bridge formation is only relevant in bone structure, not muscle function.

d)

Cross-bridge formation is a passive process with no impact on muscle movement.

9.

Explain the role of troponin in regulating muscle contraction.

a)

Troponin causes muscle relaxation by increasing the concentration of calcium ions.

b)

Troponin has no role in regulating muscle contraction.

c)

Troponin regulates muscle contraction by facilitating the interaction between actin and myosin filaments in response to calcium ions.

d)

Troponin inhibits muscle contraction by preventing the interaction between actin and myosin filaments in response to calcium ions.

10.

What is the final step in the sliding filament theory of muscle contraction?

a)

Binding of myosin heads to actin filaments

b)

Detachment of myosin heads from actin filaments

c)

Relaxation of the muscle fibers

d)

Release of calcium ions from the sarcoplasmic reticulum