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Filaments Resting state Electrical impulse (Action Potential) reaches axon terminal

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Page 1: Filaments Resting state Electrical impulse (Action Potential) reaches axon terminal
Page 2: Filaments Resting state Electrical impulse (Action Potential) reaches axon terminal

Filaments

Page 3: Filaments Resting state Electrical impulse (Action Potential) reaches axon terminal

Resting state

Page 4: Filaments Resting state Electrical impulse (Action Potential) reaches axon terminal

Electrical impulse (Action Potential) reaches axon terminal

Page 5: Filaments Resting state Electrical impulse (Action Potential) reaches axon terminal

Impulse opens Calcium Channels, rapid influx of Calcium into terminal

Page 6: Filaments Resting state Electrical impulse (Action Potential) reaches axon terminal

Vesicles with acetylcholine (Ach) bind to cell membrane & releases Ach into synaptic cleft

Page 7: Filaments Resting state Electrical impulse (Action Potential) reaches axon terminal

Vesicles with acetylcholine (Ach) bind to cell membrane & releases Ach into synaptic cleft

Ach

Page 8: Filaments Resting state Electrical impulse (Action Potential) reaches axon terminal

Ach binds to receptors on motor end plate

Page 9: Filaments Resting state Electrical impulse (Action Potential) reaches axon terminal

Ach receptors opens Na+ channels, causes an influx of sodium into muscle

Page 10: Filaments Resting state Electrical impulse (Action Potential) reaches axon terminal

Sodium influx triggers a muscle impulse (electrical signal) in all directions of muscle fiber.

Page 11: Filaments Resting state Electrical impulse (Action Potential) reaches axon terminal

Electrical impulse travels across Sarcolemma, down t-tubules, and across cisternae

Sarcolemma

Page 12: Filaments Resting state Electrical impulse (Action Potential) reaches axon terminal

Electrical impulse travels across Sarcolemma, down t-tubules, and across cisternae

Page 13: Filaments Resting state Electrical impulse (Action Potential) reaches axon terminal

Sarcoplasmic Reticulum releases Calcium into Sarcoplasm

Sarcoplasmic Reticulum

Page 14: Filaments Resting state Electrical impulse (Action Potential) reaches axon terminal
Page 15: Filaments Resting state Electrical impulse (Action Potential) reaches axon terminal

Ca2+ (Calcium) Triggers muscle contraction by binding to troponin

Page 16: Filaments Resting state Electrical impulse (Action Potential) reaches axon terminal

Tropomyosin moves and exposes actin filaments to cross bridges

Page 17: Filaments Resting state Electrical impulse (Action Potential) reaches axon terminal

Cross bridges bind to actin & pulls actin forward (ADP is released from cross bridge)

Page 18: Filaments Resting state Electrical impulse (Action Potential) reaches axon terminal

Cross bridges bind to actin & pulls actin forward (ADP is released from cross bridge)

Page 20: Filaments Resting state Electrical impulse (Action Potential) reaches axon terminal

Relaxation

• Calcium pumps return Calcium to Sarcoplasmic reticulum• Acetylcholinesterase clears ACh from synaptic cleft• ATP binds to cross bridge & myosin is released from actin

*• ATPase converts ATP to ADP using energy to cock cross

bridge*• Tropomyosin cover actin filaments

• * Note: ATP is required for both muscle contraction & relaxation

Page 21: Filaments Resting state Electrical impulse (Action Potential) reaches axon terminal
Page 22: Filaments Resting state Electrical impulse (Action Potential) reaches axon terminal

Myofibrils

• Actin Filaments “thin”– Anchored to z-lines (filament proteins)– I bands (light color) = actin + z-lines

• Myosin Filaments “thick”– A-band (dark color) = Myosin filaments + overlapping Actin filaments– H-zone (slightly lighter) = Myosin filaments between overlapping actin

• Sarcomere

– Area between 2 z-lines– Functional unit of skeletal muscle– During contraction adjacent z-lines approach each other