This MCQ module is based on: Contractile Proteins Muscle Contraction
Contractile Proteins Muscle Contraction
This assessment will be based on: Contractile Proteins Muscle Contraction
Upload images, PDFs, or Word documents to include their content in assessment generation.
Contractile Proteins and the Sliding Filament Theory
In Part 1 we saw that a muscle fibre is packed with myofibrils, and that each myofibril is a chain of sarcomeres built from two kinds of filament — thin actin filaments anchored to the ‘Z’ line and thick myosin filaments held at the ‘M’ line. Those filaments are not passive threads. They are contractile proteins: machines that convert the chemical energy of ATP into mechanical pulling. This part opens them up, and then follows the entire contraction event from a nerve impulse to a shortened sarcomere and back to relaxation.
Why the structure matters: every step of muscle contraction is a direct consequence of molecular shape — a masking subunit that hides a binding site, a globular head that can swivel, an enzyme that splits ATP. Learn the architecture first and the mechanism becomes almost inevitable.
The Thin Filament — Actin, Tropomyosin and Troponin
Each actin (thin) filament is made of two ‘F’ (filamentous) actins helically wound around each other. Each ‘F’ actin is itself a polymer of monomeric ‘G’ (globular) actins — so the thin filament is a double helix of beads, not a smooth rod.
Two filaments of another protein, tropomyosin, also run close to the ‘F’ actins throughout their length. A complex protein Troponin is distributed at regular intervals along the tropomyosin. This arrangement is the switch of the whole system: in the resting state a subunit of troponin masks the active binding sites for myosin on the actin filaments. The actin is ready to be pulled, but the handles are covered.
The Thick Filament — Meromyosin and the Cross Arm
Each myosin (thick) filament is also a polymerised protein. Many monomeric proteins called Meromyosins constitute one thick filament. Each meromyosin has two important parts: a globular head with a short arm, and a tail. The head-plus-short-arm is the heavy meromyosin (HMM); the tail is the light meromyosin (LMM).
The HMM component — the head and short arm — projects outwards at regular distance and angle from each other from the surface of the polymerised myosin filament, and this projection is known as the cross arm. The globular head is the working end: it is an active ATPase enzyme, and it carries both binding sites for ATP and active sites for actin.
Read this carefully: the myosin head is simultaneously an enzyme (it hydrolyses ATP) and a gripper (it binds actin). Contraction needs both properties in the same molecule — that is the whole trick of muscle.
The Sliding Filament Theory
Mechanism of muscle contraction is best explained by the sliding filament theory, which states that contraction of a muscle fibre takes place by the sliding of the thin filaments over the thick filaments.
Notice what the theory does not say. The filaments themselves do not shorten, coil or fold. They slide past one another, like two hands interlacing more deeply. Everything observable about a contracting muscle — the shortening, the band changes, the force — follows from that sliding.
A common misconception: students often picture actin and myosin contracting like elastic. They do not. Their lengths are fixed; only their overlap changes. That is why the ‘A’ band (the region occupied by thick filaments) keeps its length during contraction while the ‘I’ band shrinks.
From Nerve Signal to Cross Bridge — the Full Sequence
Muscle contraction is initiated by a signal sent by the central nervous system (CNS) via a motor neuron. A motor neuron along with the muscle fibres connected to it constitute a motor unit. The junction between a motor neuron and the sarcolemma of the muscle fibre is called the neuromuscular junction or motor-end plate.
The sequence runs as follows:
| Step | Event | Key molecule / structure |
|---|---|---|
| 1 | CNS sends a signal along a motor neuron to its muscle fibres | Motor unit |
| 2 | Signal reaches the motor-end plate and releases a neurotransmitter | Acetyl choline |
| 3 | An action potential is generated in the sarcolemma and spreads through the fibre | Sarcolemma |
| 4 | Ca++ is released into the sarcoplasm | Sarcoplasmic reticulum |
| 5 | Ca++ binds a subunit of troponin, removing the masking of myosin active sites on actin | Troponin subunit |
| 6 | Using energy from ATP hydrolysis, the myosin head binds the exposed active site on actin | Cross bridge |
| 7 | The head rotates, pulling the actin filament towards the centre of the ‘A’ band; ‘Z’ lines are pulled inwards → sarcomere shortens | Power stroke |
| 8 | Myosin releases ADP and Pi and returns to its relaxed state; a new ATP binds and the cross bridge is broken | ATP |
| 9 | ATP is hydrolysed again; cross-bridge formation and breakage repeat, causing further sliding | Cycling |
| 10 | Ca++ is pumped back to the sarcoplasmic cisternae; actin is re-masked; ‘Z’ lines return to their original position → relaxation | Ca++ pump |
What changes and what does not, during contraction: the ‘I’ bands get reduced, whereas the ‘A’ bands retain the length. The H zone also narrows as thin filaments advance towards the centre. Sarcomere length falls; filament length is unchanged.
Hold your two hands in front of you, fingers spread, palms facing each other, with the fingertips of one hand just touching the fingertips of the other. Your fingers are the thin filaments; the gap between your palms is the region occupied by thick filaments.
Now slide the fingers of each hand past each other until the fingertips almost reach the opposite palm. Measure the distance between your wrists before and after.
The wrists are the ‘Z’ lines, so the falling wrist-to-wrist distance is the sarcomere length. The gap between your palms — the thick filament region — never changed, which is the ‘A’ band retaining its length. The stretch of finger that was not overlapping the other hand at the start, and is now overlapping, is the ‘I’ band, reduced. And the clear space in the middle of the palm gap that your fingertips have now invaded is the H zone, narrowed.
This is exactly why the theory is called sliding filament and not shortening filament.
Fatigue, Red Fibres and White Fibres
The reaction time of the fibres can vary in different muscles. Repeated activation of the muscles can lead to the accumulation of lactic acid due to anaerobic breakdown of glycogen in them, causing fatigue.
Muscle contains a red coloured oxygen storing pigment called myoglobin. Its content is not the same in every muscle, and this single difference splits skeletal muscle into two functional classes.
| Feature | Red fibres | White fibres |
|---|---|---|
| Myoglobin content | High → reddish appearance | Very less → pale or whitish |
| Mitochondria | Plenty | Few |
| Sarcoplasmic reticulum | Comparatively less | High |
| Mode of energy supply | Aerobic — uses the stored O2 for ATP production | Anaerobic process |
| Also called | Aerobic muscles | — |
| Functional consequence | Sustained activity, slow to fatigue | Rapid powerful bursts, fatigue quickly |
Linking back to Chapter 12: the anaerobic breakdown of glycogen that fatigues a muscle is glycolysis followed by lactic acid fermentation. Red fibres, with their oxygen store and abundant mitochondria, can carry pyruvate onward into the Krebs cycle and the electron transport system — which is why they yield far more ATP per glucose and accumulate far less lactic acid.
🎯 Interactive: Trace a Contraction Step by Step
Select any stage of the contraction–relaxation cycle to see what is happening at the molecular level, and what would happen if that step failed.
🎯 Competency-Based Questions
The single stimulus will still release Ca++ into the sarcoplasm, troponin will be bound, actin will be unmasked and the fibre will contract normally. But relaxation requires that Ca++ be pumped back to the sarcoplasmic cisternae so that actin is re-masked. With the pump blocked, sarcoplasmic Ca++ stays high, troponin stays bound, active sites remain exposed, and cross-bridge cycling continues as long as ATP is available.
The fibre therefore remains contracted and cannot relax — a sustained contraction. This shows that relaxation is not simply the absence of contraction: it is an active, ATP-requiring process of calcium removal.
Athlete A has predominantly red fibres — high myoglobin (hence the deep red) storing oxygen, and plenty of mitochondria to use that oxygen for aerobic ATP production. Such muscles sustain activity for long periods with little lactic acid accumulation, so athlete A suits the marathon.
Athlete B has predominantly white fibres — very little myoglobin (hence pale), few mitochondria, and a high amount of sarcoplasmic reticulum that can release calcium rapidly for very fast, powerful contractions. They depend on the anaerobic process, so they produce great force briefly and fatigue quickly as lactic acid accumulates. Athlete B suits the 100 m sprint.
The chain breaks at the neuromuscular junction (motor-end plate), at step 3 of the sequence. The CNS signal still travels down the motor neuron and acetyl choline is still released. But with its receptors blocked, the neurotransmitter cannot generate an action potential in the sarcolemma.
No action potential means no spread through the muscle fibre, no release of Ca++ into the sarcoplasm, no binding of Ca++ to troponin, no unmasking of actin active sites and therefore no cross bridges. The actin, myosin and ATP are all perfectly functional but never receive the trigger — so the muscle is flaccid and paralysed.
The conclusion is wrong, and the observer's own data disprove it. The ‘A’ band is defined by the extent of the thick (myosin) filaments. If the myosin filaments folded or shortened, the ‘A’ band length would have to decrease — but it was measured as unchanged.
The correct interpretation is the sliding filament theory: the thin filaments slide over the thick filaments towards the centre of the ‘A’ band. Because the thin filaments advance inwards, the non-overlapping region at the edges (‘I’ band) shrinks and the central thick-filament-only region (H zone) is invaded and narrows — exactly the pattern reported — with no change in either filament's own length.
The statement is incomplete. ATP is used at more than one point:
(i) Energy for cross-bridge formation and the power stroke — the myosin head hydrolyses ATP and uses that energy to bind actin and rotate. This is the step the student has in mind.
(ii) Breaking the cross bridge — a new ATP must bind to the myosin head before the existing cross bridge can be broken. Without ATP the head stays attached to actin.
(iii) Pumping Ca++ back into the sarcoplasmic cisternae, which is required for re-masking of actin and hence for relaxation.
So a muscle with no ATP would not go limp; the existing cross bridges could neither be broken nor re-masked, leaving it stiff. Relaxation, no less than contraction, costs energy.
🧠 Assertion–Reason Questions
For each pair, decide whether both statements are true and whether the reason correctly explains the assertion.
Both A and R are true, and R is the correct explanation of A.
The ‘A’ band marks the extent of the thick filaments. Since the sliding filament theory holds that only the overlap between filaments changes, the thick filaments keep their length and so the ‘A’ band is unaltered, while the ‘I’ band (non-overlapping thin filament region) is reduced.
Both A and R are true, and R is the correct explanation of A.
This masking is the molecular switch of muscle. Calcium binding to the troponin subunit removes the mask, which is why a rise in sarcoplasmic Ca++ is the immediate trigger for cross-bridge formation.
A is true but R is false.
Red fibres do resist fatigue — but because of high myoglobin (an oxygen store) together with plenty of mitochondria, allowing aerobic ATP production with little lactic acid accumulation. It is the white fibres that have a high amount of sarcoplasmic reticulum, along with very little myoglobin and few mitochondria.