Human Anatomy Codexery

Skeletal muscle

Striated, multinucleated tissue enabling voluntary movement and posture.

Skeletal muscle

Skeletal muscle is one of the three types of vertebrate muscle tissue, alongside cardiac muscle and smooth muscle. It is part of the musculoskeletal system and is typically attached by tendons to the bones of a skeleton. Skeletal muscle comprises about 35% of the human body by weight and is responsible for producing movement, maintaining body posture, controlling body temperature, and stabilizing joints. It also functions as an endocrine organ, secreting a variety of proteins, lipids, amino acids, metabolites, and small RNAs.

field
Anatomy, Physiology
known_for
Voluntary movement, striated appearance, multinucleated muscle fibers
percentage_of_body_weight
~35% in humans
nuclei_distribution
~50% myonuclei, ~50% mononuclear cell nuclei

Lore & Background

Skeletal muscle cells, also called muscle fibers, are formed from the fusion of developmental myoblasts during myogenesis, resulting in long multinucleated cells. These fibers contain myofibrils composed of actin and myosin filaments arranged in repeating units called sarcomeres, which are the basic contractile units. Muscles are powered by oxidation of fats and carbohydrates, with anaerobic reactions used particularly by fast twitch fibers, producing ATP for myosin head movement. A skeletal muscle contains multiple fascicles—bundles of muscle fibers—each surrounded by connective tissue layers: endomysium, perimysium, and epimysium. Tendons attach muscles to bones at the myotendinous junction. Sensory receptors include muscle spindles (stretch receptors) and Golgi tendon organs (proprioceptors at the myotendinous junction). Muscle architecture varies, with parallel and pennate arrangements affecting force generation and speed.

Reader's Guide

Skeletal muscle is fundamental to vertebrate movement and homeostasis. Its striated appearance, due to sarcomere arrangement, distinguishes it from cardiac and smooth muscle. The multinucleated nature of its fibers, arising from myoblast fusion, allows for large-scale protein synthesis needed for contraction. The presence of both myonuclei and mononuclear cells (including endothelial cells, fibro-adipogenic progenitors, pericytes, and immune cells) highlights a complex cellular environment. Research focuses on muscle fibers, mononuclear cell types, and endocrine functions. The ability of satellite cells to provide additional myonuclei for growth or repair underscores muscle plasticity. Understanding skeletal muscle is crucial for fields from sports science to pathology, as it comprises a significant portion of body mass and influences metabolism, posture, and joint stability.

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