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Step 1 of Excitation-Contraction Coupling
Motor neurons secrete ACh

Step 2 of Excitation-Contraction Coupling
The ACh receptors are non specific cation channels. The effect of Na influx is greater than K

End Plate Potential
Depolarization resulting from ACh receptors opening (excitatory), resulting in AP
What does depolarization trigger?
Depolarization triggers a muscle action potential that travels across cell membrane
Step 3 of Excitation-Contraction Coupling
The AP travels down T-tubules and alters the shape of DHP receptors

Step 4 of Excitation-Contraction Coupling
The shape change of DHP receptors physically opens the gate of ryanodine receptors (RyR)

What are ryanodine receptors
Gated ion channels on the SR and open when Ca2+ moves from SR into ICF
Step 5 of Excitation-Contraction Coupling
Ca2+ binds to troponin in the sarcomeres, moving tropomyosin and allowing crossbridges to form

Step 6 of Excitation-Contraction Coupling
Contractile cycling occurs

Step 7 of Excitation-Contraction Coupling
Actin slides toward the M-line, shortening the sarcomere

Step 8 of Excitation-Contraction Coupling
Ca2+ - ATPase pumps move Ca2+ back into the SR; they are always active

Step 9 of Excitation-Contraction Coupling
As free Ca2+ in the ICF decreases, Ca2+ unbinds from troponin

Step 10 of Excitation-Contraction Coupling
Contraction cycling stops as tropomyosin covers myosin binding sites of actin

Twitch
Muscle contraction and relaxation resulting from one AP
Latent Period
Delay between AP and start of contraction (because Ca2+ movement)
What are the three pathways that supply additional ATP to muscles
Phosphocreatine, Oxidative phosphorylation, and glycolysis
Phosphocreatine
Molecule that stores energy through a Pi
What is the first source of ATP at the onset of contractile activity
Phosphocreatine
There is ______ times more ATP stored in _______ than in free ICF
Five, phosphocreatine
Creatine Kinase
Enzyme that catalyzes reversible reaction
What provides ATP for prolonged periods? (Light-medium exercise)
Oxidative phosphorylation
Myoglobin
Stores small amounts of O2 and increases O2 transfer rate from blood to muscle fibers
Oxidative Phosphorylation produces ______ amounts of ATP, but is _______ and requires O2
Large, slow
What occurs during high intensity exercise? (Low O2 delivery or ox. phos. cannot keep up with ATP need)
Glycolysis
Glycolysis produces ATP _______ but _________
Quickly, inefficiently
Glycogen
Limited quantities of glucose stored in cells as glycogen ; quickly depleted
Lactate
Produced when pyruvate cannot enter oxidative phosphorylation
Muscle Fatigue
Reversible state where exercising muscle can no longer respond to stimulation with the same contractile activity
Central Fatigue
The feeling of fatigue, protective mechanism to prevent damage from overexertion
Peripheral Fatigue
A failure of the processes in the nerve or muscle tissue of contraction
Hypothesized sourse for perihperal fatigue (Nervous)
Cannot process ACh enough to keep up with stimulation. Usually a diseased state and not a cause of fatigue
What are 3 muscular hypothesized sources for peripheral fatigue?
- Too much Pi in the ICF prevents Pi release from myosin
- Ca2+ decrease because it binds to phosphates
- K+ imbalance in ECF because of T-tubules