Q.Which is not involved in muscular contraction?
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Mechanism Of Muscle Contraction
You are sitting still, reading this. Now clench your fist. In that instant, a signal shot from your brain down your arm, crossed a tiny gap onto a muscle fibre, and triggered a microscopic ratcheting motion inside thousands of cells. That ratcheting is muscle contraction.
The whole process is a chain of events that converts a chemical signal (nerve impulse) into a mechanical pull (shortening of the muscle). Let's walk through it step by step, from the nerve ending to the sliding filaments.
Step 1: The nerve impulse arrives and releases acetylcholine
A motor neuron carries an electrical signal to the neuromuscular junction — the point where the nerve meets the muscle fibre. When the impulse reaches the nerve terminal, it triggers the release of a chemical messenger called acetylcholine into the tiny gap (synaptic cleft).
Acetylcholine diffuses across and binds to receptors on the muscle cell membrane. This binding opens ion channels, causing a local electrical change that spreads across the muscle fibre's surface and deep into its interior via tube-like invaginations called T-tubules.
Acetylcholine is quickly broken down by an enzyme (acetylcholinesterase) so the signal is brief. This prevents the muscle from staying contracted.
Step 2: The T-tubule signal releases calcium from the sarcoplasmic reticulum
The electrical signal travelling down the T-tubules reaches the sarcoplasmic reticulum (SR) — a specialised calcium store wrapped around each contractile unit. The signal causes calcium channels on the SR to open, and calcium ions (Ca²⁺) flood into the cytoplasm surrounding the myofibrils.
This rise in calcium concentration is the master switch for contraction. Without calcium, the muscle stays relaxed.
Step 3: Calcium exposes the binding sites on actin
Inside each muscle fibre are two key protein filaments: actin (thin) and myosin (thick). In a relaxed muscle, a protein complex called troponin-tropomyosin sits on the actin filament, physically blocking the sites where myosin would attach.
Calcium binds to troponin, which changes shape and shifts the tropomyosin strand away, uncovering the myosin-binding sites on actin. Now the stage is set for the actual pulling.
Step 4: Cross-bridge cycling — the power stroke
Myosin heads are already "cocked" (energised) from a previous ATP hydrolysis. Each myosin head now binds to an exposed site on actin, forming a cross-bridge.
The myosin head then pivots, pulling the actin filament toward the centre of the sarcomere. This is the power stroke — the actual shortening of the muscle. After the power stroke, the myosin head is still attached to actin but in a low-energy position.
Think of a rowboat oar: the oar blade (myosin head) catches the water (actin) and pulls — that's the power stroke. Then you lift the oar out, reposition it, and pull again.
Step 5: ATP detaches the myosin and re-cocks it
For the cycle to repeat, the myosin head must let go of actin. A new molecule of ATP binds to the myosin head. This binding causes the myosin to release actin.
The ATP is then hydrolysed (split) into ADP and inorganic phosphate (Pᵢ), and the energy released re-cocks the myosin head back to its high-energy position. The head is now ready to bind to a new actin site further along the filament.
As long as calcium remains high and ATP is available, this cycle repeats hundreds of times per second, sliding the filaments past each other and shortening the muscle.
The cross-bridge cycle in four steps:
- Myosin head (cocked) binds to exposed actin → cross-bridge formed.
- Power stroke: myosin pivots, pulls actin → sarcomere shortens.
- ATP binds to myosin → myosin releases actin.
- ATP hydrolysed → myosin re-cocks.
Step 6: Relaxation — calcium is pumped back
When the nerve signal stops, calcium channels on the SR close. An active calcium pump (using ATP) pumps Ca²⁺ back into the SR, lowering the cytoplasmic calcium level.
Without calcium, troponin returns to its original shape, tropomyosin slides back over the binding sites, and myosin can no longer attach. The muscle relaxes.
The big picture: what drives it all …
Muscle contraction (sliding filament theory) needs actin, myosin, troponin, tropomyosin and calcium ions; one listed ion is not directly required. …
Among the options, Mg is not involved in muscle contraction.
According to the sliding filament theory, muscle contraction is triggered when Ca2+ ions bind to troponin on the actin (thin) filament, moving tropomyosin aside and exposing the myosin-binding sites so that cross-bridges can form. Thus calcium (Ca2+), troponin and actin …
- CBSE 2023Set ANN2 marksQ.The processes involved in muscle contraction are given below. Arrange them in correct sequential order. (The first step is given correct) • A signal sent out by CNS. • Binding of Ca++ with troponin. • Release of a neurotransmitter. • Remove the masking of active sites for myosin. • Release of Ca++ into Sarcoplasm.
›Reveal solutionSolution
Muscle contraction begins with a nerve signal from the CNS, followed by neurotransmitter release, calcium release into the sarcoplasm, calcium binding to troponin, and finally unmasking of actin's active sites for myosin to bind.
Correct sequence of events:
- A signal (nerve impulse) is sent out by the CNS (given as the first, correct step).
- This triggers release of a neurotransmitter (acetylcholine) at the neuromuscular junction, generating an action potential that spreads through the sarcolemma and the T-tubules.
- This causes release of Ca++ into the sarcoplasm from the sarcoplasmic reticulum.
- The released Ca++ activates binding of Ca++ with troponin on the actin (thin) filament. …
- CBSE 2021Set ANN2 marksQ.Draw a flow chart, showing the physiological processes involved in the formation of cross bridges during muscle contraction.
›Reveal solutionSolution
Cross-bridge formation is triggered by a nerve impulse that raises cytosolic Ca2+, which uncovers actin's myosin-binding sites so an ATP-energised myosin head can attach to actin and pull it inward.
Flow chart:
- A nerve impulse (action potential) arrives at the neuromuscular junction and triggers release of the neurotransmitter acetylcholine (ACh).
- ACh generates an action potential across the sarcolemma (muscle fibre membrane), which spreads inward via the transverse (T) tubules.
- This depolarisation causes the sarcoplasmic reticulum to release stored Ca2+ ions into the sarcoplasm (cytosol).
- The Ca2+ ions bind to troponin on the actin (thin) filament.
- Ca2+ binding to troponin causes a conformational change that shifts tropomyosin away from the myosin-binding (active) sites on actin, exposing them.
- The myosin head -- already energised by hydrolysis of ATP into ADP + Pi (held on the head) -- binds to the exposed active site on actin, forming a cross bridge.
- Release of Pi from the myosin head triggers the power stroke: the myosin head bends/rotates, pulling the actin filament inward (toward the centre of the sarcomere).
- ADP is then released from the myosin head.
- A new ATP molecule binds to the myosin head, causing it to detach from actin (breaking the cross bridge). …
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