Most all muscle contractions begin with a signal called an action potential along a motor neuron that crosses the synaptic gap at the neuromuscluar junction and then gets propogated along the sarcoplasmic reticulum and the T-tubules inside of a muscle cell. This releases calcium so it can attach to the actin by opening the troponin-tropomyosin attachment sites for the myosin heads. With the help of ATP, the myosin heads form cross-bridges to the actin myofilaments and pull the Z-lines closer together which makes the sarcomeres shorter, thereby contracting the muscle cells.
The following steps are involved in muscle contraction:
(1) The sequence of events leading to contraction is initiated somewhere in the central nervous system, either as voluntary activity from the brain or as reflex activity from the spinal cord.
(2) A motor neuron in the ventral horn of the spinal cord is activated, and an action potential passes outward in a ventral root of the spinal cord.
(3) The axon branches to supply a number of muscle fibers called a motor unit, and the action potential is conveyed to a motor end plate on each muscle fiber.
(4) At the motor end plate, the action potential causes the release of packets or quanta of acetylcholine into the synaptic clefts on the surface of the muscle fiber.
(5) Acetylcholine causes the electrical resting potential under the motor end plate to change, and this then initiates an action potential which passes in both directions along the surface of the muscle fiber.
(6) At the opening of each transverse tubule onto the muscle fiber surface, the action potential spreads inside the muscle fiber.
(7) At each point where a transverse tubule touches part of the sarcoplasmic reticulum, it causes the sarcoplasmic reticulum to release Ca++ ions.
(8) The calcium ions result in movement of troponin and tropomyosin on their thin filaments, and this enables the myosin molecule heads to "grab and swivel" their way along the thin filament. This is the driving force of muscle contraction.
Contraction is turned off by the following sequence of events:
(9) Acetylcholine at the neuromuscular junction is broken down by acetylcholinesterase, and this terminates the stream of action potentials along the muscle fiber surface.
(10) The sarcoplasmic reticulum ceases to release calcium ions, and immediately starts to resequester all the calcium ions that have been released.
(11) In the absence of calcium ions, a change in the configuration of troponin and tropomyosin then blocks the action of the myosin molecule heads, and contraction ceases.
(12) In the living animal, an external stretching force, such as gravity or an antagonistic muscle, pulls the muscle back to its original length. The following steps are involved in muscle contraction:
(1) The sequence of events leading to contraction is initiated somewhere in the central nervous system, either as voluntary activity from the brain or as reflex activity from the spinal cord.
(2) A motor neuron in the ventral horn of the spinal cord is activated, and an action potential passes outward in a ventral root of the spinal cord.
(3) The axon branches to supply a number of muscle fibers called a motor unit, and the action potential is conveyed to a motor end plate on each muscle fiber.
(4) At the motor end plate, the action potential causes the release of packets or quanta of acetylcholine into the synaptic clefts on the surface of the muscle fiber.
(5) Acetylcholine causes the electrical resting potential under the motor end plate to change, and this then initiates an action potential which passes in both directions along the surface of the muscle fiber.
(6) At the opening of each transverse tubule onto the muscle fiber surface, the action potential spreads inside the muscle fiber.
(7) At each point where a transverse tubule touches part of the sarcoplasmic reticulum, it causes the sarcoplasmic reticulum to release Ca++ ions.
(8) The calcium ions result in movement of troponin and tropomyosin on their thin filaments, and this enables the myosin molecule heads to "grab and swivel" their way along the thin filament. This is the driving force of muscle contraction.
Contraction is turned off by the following sequence of events:
(9) Acetylcholine at the neuromuscular junction is broken down by acetylcholinesterase, and this terminates the stream of action potentials along the muscle fiber surface.
(10) The sarcoplasmic reticulum ceases to release calcium ions, and immediately starts to resequester all the calcium ions that have been released.
(11) In the absence of calcium ions, a change in the configuration of troponin and tropomyosin then blocks the action of the myosin molecule heads, and contraction ceases.
(12) In the living animal, an external stretching force, such as gravity or an antagonistic muscle, pulls the muscle back to its original length.
Describe the sequence of events that enable us to hear
6 steps in a muscle contraction
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The inspection step precedes the honors to the nation in a normal sequence of events for a review. These steps occur during a review ceremony.
Inspection
Inspection
Inspection
Example sentence - It would be difficult to describe the sequence of events if I didn't explain why I was there to begin with.
Remarks
the action and sequence of events in a story that are usually a series of related incidents.
You can use the term "plot" to describe the sequence of events or incidents that make up a story.
Yes, the sequence of events in a story is directly related to the plot. The plot is the series of events that make up the narrative and drive the story forward. It includes the conflict, rising action, climax, falling action, and resolution.