Study Guide

Skeletal muscle contraction (sliding filament model)

Biology· 9700 2025-2027 Syllabus Section 16.8· 12 min read

1. Sarcomere Structure: Core Contractile Unit★★★☆☆⏱ 3 min

A sarcomere runs between two adjacent Z-lines, and contains overlapping thick myosin filaments and thin actin filaments. All contraction events rely on the organised arrangement of these two filament types.

📘 Definition

Sarcomere

ZlinetoZlineZ-line to Z-line

The smallest functional contractile unit of striated muscle, whose shortening produces macroscopic muscle tension.

Sarcomere Region

Composition

A-band

Full length of thick myosin filaments, including overlapping actin regions

I-band

Actin filaments not overlapping with myosin

H-zone

Myosin filaments not overlapping with actin

Z-line

Protein boundary that anchors actin filaments at each end of the sarcomere

📐 Worked Example

A student is given an electron micrograph of a relaxed sarcomere 2.5 μm long, with A-band length 1.5 μm. Calculate the maximum possible length of the H-zone at full contraction.

  1. 1

    First, note that A-band length never changes, so myosin filament total length is 1.5 μm.

  2. 2

    Total sarcomere length at rest = 2.5 μm, so total actin filament length per side of Z-line = (2.5 - 1.5)/2 = 0.5 μm.

  3. 3

    At full contraction, actin filaments fully overlap myosin, so H-zone length = 1.5 - (0.5 * 2) = 0 μm.

✓ Quick check
  1. Which structure anchors thin actin filaments at the edge of a sarcomere?

    • A-band

    • Z-line

    • H-zone

    • Troponin

    Reveal answer
    Z-line

    Z-lines form the boundary of each sarcomere and attach actin filaments to keep them aligned.

2. Stepwise Cross-Bridge Cycling★★★★☆⏱ 4 min

Cross-bridge cycling is the repeated sequence of attachment, movement, and detachment of myosin heads that pulls actin filaments over myosin to shorten the sarcomere. This process repeats as long as calcium ions and ATP are available.

📐 Worked Example

Order the following events of cross-bridge cycling correctly: 1. Power stroke pulls actin, 2. Myosin head hydrolyses ATP, 3. New ATP binds myosin head, 4. Myosin head binds actin

  1. 1

    Step 1: ATP hydrolysis cocks the myosin head into an energised position: event 2 first.

  2. 2

    Step 2: The energised myosin head forms a cross-bridge with the exposed actin binding site: event 4 next.

  3. 3

    Step 3: Myosin releases ADP and Pi, pulling the actin filament in the power stroke: event 1 next.

  4. 4

    Step 4: A new ATP molecule binds the myosin head, breaking the cross-bridge to reset the cycle: event 3 last.

3. Role of Calcium Ions and ATP★★★★☆⏱ 3 min

Calcium ions released from the sarcoplasmic reticulum bind to troponin, causing troponin to change shape and move tropomyosin away from the actin binding sites that are normally blocked in resting muscle. Without calcium, no cross-bridges can form.

📘 Definition

Tropomyosin

Fibrous protein that wraps around actin filaments, blocking myosin binding sites in the absence of calcium ions.

📐 Worked Example

A muscle fibre is placed in a solution with no calcium ions, but excess ATP. Predict what will happen when the fibre is electrically stimulated.

  1. 1

    The action potential will travel down the T-tubules to the sarcoplasmic reticulum.

  2. 2

    No extracellular calcium is available to enter the cytoplasm, so troponin remains bound to tropomyosin in the blocking position.

  3. 3

    No myosin binding sites on actin are exposed, so no cross-bridges can form, and no contraction occurs even with abundant ATP.

4. Sarcomere Band Changes During Contraction★★★☆☆⏱ 2 min

As actin filaments slide over myosin, regions of the sarcomere that contain only one filament type shorten, while regions that correspond to the full length of thick myosin filaments stay exactly the same length.

Sarcomere Region

Change During Contraction

A-band

No change in length

I-band

Shortens significantly

H-zone

Shortens, and disappears at maximum contraction

Z-line to Z-line distance

Shortens overall

5. Common Pitfalls

Wrong move:

Stating the A-band shortens during contraction

Why:

The A-band corresponds to the full fixed length of thick myosin filaments, which never change size

Correct move:

Explicitly note only the I-band and H-zone shorten, while the A-band remains constant

Wrong move:

Claiming ATP directly powers the power stroke

Why:

ATP hydrolysis resets the myosin head after the power stroke, while the power stroke itself releases stored ADP and Pi

Correct move:

Distinguish ATP binding (cross-bridge release) and hydrolysis (cock myosin) from the power stroke event

Wrong move:

Saying tropomyosin binds calcium ions directly

Why:

Troponin is the dedicated calcium-binding protein, tropomyosin only moves after troponin changes shape

Correct move:

Specify Ca²+ binds troponin first, which then displaces tropomyosin from actin binding sites

Wrong move:

Forgetting that muscle relaxation requires ATP

Why:

Many students only describe contraction, and omit the active transport of calcium back to the sarcoplasmic reticulum

Correct move:

Add that ATP-powered calcium pumps remove cytoplasmic calcium to end contraction and enable relaxation

Wrong move:

Confusing the H-zone and I-band

Why:

Students mix up the two non-overlapping light regions of the sarcomere

Correct move:

Define the I-band as actin-only across two adjacent sarcomeres, and the H-zone as myosin-only at the centre of one sarcomere

6. Quick Reference Cheatsheet

Component

Behaviour during contraction

Key Exam Mark Point

A band

No length change

Myosin filament length is fixed

I band

Shortens

Actin slides over myosin to reduce actin-only region

H zone

Shortens / disappears

Maximum overlap of actin and myosin at full contraction

Troponin

Binds Ca²+ to change shape

Calcium does not bind tropomyosin

Cross bridge

Forms, bends, releases, resets

Requires both Ca²+ and continuous supply of ATP

When this came up on past exams

AI-estimated based on syllabus patterns — cross-check with official past papers for accuracy. Use only as revision-focus signals.

  • 2024 · Paper 4

    Sliding filament step explanation

  • 2023 · Paper 5

    Sarcomere length practical analysis

  • 2022 · Paper 2

    Sarcomere band change multiple choice

What's Next

Mastering the sliding filament model is critical for scoring full marks on long answer physiology questions in CIE A-Level Paper 4, and it underpins your understanding of neuromuscular junctions, muscle fatigue, and movement disorders. You will next apply this knowledge to explore how action potentials from motor neurons trigger calcium release that initiates contraction, before comparing skeletal, cardiac and smooth muscle structure and function. This concept is also frequently tested in Paper 5 planning questions where you investigate the effect of stimulus intensity on muscle contraction force, so ensure you can link the molecular events you have learned to observable whole-muscle behaviour.