Makale
Skeletal Muscle: Histology, Contraction, and Clinical Disorders
H
Hacı Mert Gökhan
@hacimertgokhan
12 Temmuz 202611400
Overview
Skeletal muscle is a striated, voluntary muscle that makes up ~40-50% of total body mass. It is organized hierarchically from whole muscle → muscle fascicles → muscle fibers (cells) → myofibrils → sarcomeres → filaments (actin and myosin).
Hierarchical Organization
Muscle → Fascicle → Fiber
- Muscle: Whole organ (e.g., biceps brachii) wrapped in epimysium (dense connective tissue)
- Fascicle: Bundle of muscle fibers wrapped in perimysium
- Muscle fiber (cell): Long, cylindrical, multinucleated cell wrapped in endomysium
Fiber → Myofibril → Sarcomere → Filaments
- Myofibrils: Long cylindrical organelles filling the fiber; aligned in parallel; give the striated appearance
- Sarcomere: Basic contractile unit, bounded by Z discs
Sarcomere Components
- Z disc: Anchors thin filaments (actin); defines sarcomere boundaries
- I band: Region of thin filaments only (light)
- A band: Region of thick filaments (myosin); entire thick filament length
- H zone: Center of A band with thick filaments only
- M line: Center of sarcomere; links thick filaments together
Memory aid: "Zee Is A Heavy Man" (Z disc, I band, A band, H zone, M line)
Molecular Components
Thick Filaments (Myosin)
- Myosin II structure: Two heavy chains (tail + heads) + four light chains
- Myosin heads: Contain ATPase activity and actin-binding sites
- Form the A band
Thin Filaments (Actin)
- Double helix of G-actin monomers
- Tropomyosin: Blocks myosin-binding sites at rest
- Troponin complex:
- TnC: Binds calcium (initiates contraction)
- TnT: Binds tropomyosin
- TnI: Inhibits contraction
Sarcoplasmic Reticulum (SR) and T-Tubules
- Sarcoplasmic reticulum: Modified smooth ER; stores Ca²⁺; terminal cisternae
- T-tubules: Invaginations of sarcolemma that carry action potentials deep into the fiber
- Triad: T-tubule + two terminal cisternae
Sliding Filament Mechanism of Contraction
- Action potential arrives at the neuromuscular junction (acetylcholine released, end-plate potential)
- AP travels along sarcolemma and into T-tubules
- Dihydropyridine receptors in T-tubule activate ryanodine receptors on SR → Ca²⁺ release
- Ca²⁺ binds TnC → conformational shift in troponin → tropomyosin moves → exposes myosin-binding sites on actin
- Myosin head (already bound to ATP) hydrolyzes ATP → ADP + Pi bound; head "cocks"
- Myosin binds actin → cross-bridge formation
- Power stroke: Pi released, head pivots, slides thin filament
- ADP released, new ATP binds → myosin detaches
- Cycle repeats until Ca²⁺ removed
Excitation-Contraction Coupling
- Ca²⁺ pumped back into SR by SERCA (sarcoplasmic reticulum Ca²⁺ ATPase)
- Relaxation requires energy (ATP) for SERCA
- Rigor mortis: After death, ATP is depleted → myosin stays attached to actin → stiffness
Muscle Fiber Types
Type I (Slow-twitch, red)
- High myoglobin (red color)
- Many mitochondria, oxidative phosphorylation
- Slow contraction, fatigue-resistant
- Examples: Postural muscles (soleus), long-distance runners
Type II (Fast-twitch, white)
- Type IIa: Fast-oxidative-glycolytic; intermediate
- Type IIb: Fast-glycolytic; quick, fatigue easily; sprinters
- Lower myoglobin, fewer mitochondria, more glycogen
Motor Units
- One motor neuron + all muscle fibers it innervates
- Small motor units (1-3 fibers per neuron): Extraocular muscles — fine control
- Large motor units (1000+ fibers per neuron): Gastrocnemius — gross movement
- All fibers in a motor unit are the same type
Clinical Disorders
Muscular Dystrophies
- Duchenne muscular dystrophy (DMD)
- X-linked recessive; dystrophin gene mutation (Xp21)
- Onset age 2-5; calf pseudohypertrophy, Gowers sign
- Death by age 20-30 from respiratory/cardiac failure
- Elevated CK (early), absent dystrophin on biopsy
- Becker muscular dystrophy: Less severe, partial dystrophin
Myasthenia Gravis
- Autoantibodies against postsynaptic ACh receptors at NMJ
- Fatigable weakness: worsens with use, improves with rest
- Tensilon test: Edrophonium (short-acting AChE inhibitor) briefly improves strength
- Ice pack test: Ice on ptotic eyelid improves ptosis
- Associated with thymoma (50%) and other autoimmune diseases
Lambert-Eaton Myasthenic Syndrome
- Antibodies against presynaptic voltage-gated Ca²⁺ channels
- Weakness IMPROVES with repeated use (opposite of MG)
- Often paraneoplastic (small cell lung cancer)
Polymyositis and Dermatomyositis
- Polymyositis: CD8+ T-cell mediated muscle inflammation
- Dermatomyositis: CD4+ mediated with skin findings (heliotrope rash, Gottron papules)
- Elevated CK, proximal muscle weakness
Rhabdomyolysis
- Skeletal muscle breakdown → myoglobinuria → acute kidney injury
- Causes: Crush injury, prolonged immobilization, statins, cocaine, intense exercise
- Dark "tea-colored" urine, elevated CK
Key Takeaway
Skeletal muscle's striated appearance comes from the precise arrangement of actin and myosin in sarcomeres. Memorize: I band = thin only, A band = thick (and thin where overlapping), H zone = thick only, M line = center, Z disc = boundary. DMD vs MG vs LEMS is a classic exam trio.
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