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PHYSIOLOGICAL ANATOMY OF SKELETAL MUSCLE Self learning Lecture # 1, page # 79 Ch # 6 UNIT # 2.

PHYSIOLOGICAL ANATOMY OF SKELETAL MUSCLE Superfast image base self learning series # 1, page # 79 Ch# 6 UNIT 2, Guyton Physiology 15th Edition.
  • Skeletal muscles are made up of many muscle fibers.
  • Each muscle fiber has a diameter of about 10–80 micrometers (µm).
  • Every muscle fiber is made of smaller subunits arranged inside it
  • These subunits become progressively smaller from the whole muscle fiber to its internal structures.
  • In most skeletal muscles, each muscle fiber extends from one end of the muscle to the other.
  • This means that one muscle fiber usually runs the entire length of the muscle.
  • About 98% of muscle fibers receive only one nerve ending.
  • This single nerve ending is usually located near the middle of the muscle fiber.
  • The nerve ending carries signals that stimulate the entire muscle fiber to contract.

KEY CONCEPT

  • Skeletal muscle is composed of numerous muscle fibers measuring 10–80 µm in diameter.
  • Each muscle fiber contains progressively smaller subunits.
  • Most muscle fibers extend the entire length of the muscle.
  • About 98% of muscle fibers are supplied by a single nerve ending.
  • The nerve ending is usually located near the middle of the muscle fiber, allowing the entire fiber to contract.

The Sarcolemma Is a Thin Membrane Enclosing a Skeletal Muscle Fiber

  • The sarcolemma is a thin membrane that surrounds each skeletal muscle fiber.
  • The sarcolemma has two main parts:
    • A true cell membrane, called the plasma membrane.
    • An outer coat made of a thin layer of polysaccharide material containing many thin collagen fibrils.
  • At both ends of the muscle fiber, the outer layer of the sarcolemma fuses with a tendon fiber.
  • The tendon fibers then join together in bundles.
  • These bundles form the muscle tendons.
  • The muscle tendons connect the muscles to the bones.

KEY CONCEPT

  • The sarcolemma is the thin membrane that encloses a skeletal muscle fiber.
  • It consists of the plasma membrane and an outer polysaccharide layer containing collagen fibrils.
  • The outer layer of the sarcolemma joins with tendon fibers at both ends of the muscle fiber.
  • Tendon fibers bundle together to form muscle tendons, which attach muscles to bones.

Myofibrils Are Composed of Actin and Myosin Filaments

  • Each muscle fiber contains several hundred to several thousand myofibrils (Fig. 6.1C).
  • Each myofibril is made of about:
    • 1500 myosin filaments.
    • 3000 actin filaments (Fig. 6.1D–E).
  • Actin and myosin are large protein molecules responsible for muscle contraction.
  • In Fig. 6.1E–L:
    • The thick filaments are myosin.
    • The thin filaments are actin.
  • The actin and myosin filaments partially overlap (interdigitate) (Fig. 6.1E).
  • This overlapping produces alternating light and dark bands in the myofibril.
  • The light bands contain only actin filaments.
  • These are called I bands because they are isotropic to polarized light.
  • The dark bands contain:
    • Myosin filaments.
    • The overlapping ends of the actin filaments.
  • These are called A bands because they are anisotropic to polarized light.
  • Small projections are present on the sides of the myosin filaments (Fig. 6.1E–L).
  • These projections are called cross-bridges.
  • Cross-bridges interact with actin filaments to produce muscle contraction.
  • The ends of the actin filaments are attached to the Z disk (Fig. 6.1E).
  • From the Z disk, the actin filaments extend in both directions and overlap with the myosin filaments.
  • The Z disk is made of filamentous proteins different from actin and myosin.
  • The Z disk extends across each myofibril.
  • It also connects neighboring myofibrils across the entire muscle fiber.
  • Therefore, the entire muscle fiber shows alternating light and dark bands.
  • These bands give skeletal muscle and cardiac muscle their striated appearance.
  • The portion of a myofibril between two successive Z disks is called a sarcomere (Fig. 6.1E).
  • During muscle contraction (bottom of Fig. 6.4), the sarcomere length is about 2 µm.
  • At this length:
    • The actin filaments completely overlap the myosin filaments.
    • The tips of the actin filaments just begin to overlap each other.
  • At this sarcomere length, the muscle produces its greatest force of contraction.

KEY CONCEPT

  • Each muscle fiber contains many myofibrils.
  • Each myofibril is composed of thick myosin filaments and thin actin filaments.
  • Partial overlap of actin and myosin forms the light I bands and dark A bands.
  • Cross-bridges on myosin interact with actin to produce muscle contraction.
  • Actin filaments are attached to the Z disk, and the region between two Z disks is called the sarcomere (Fig. 6.1E).
  • At a sarcomere length of about 2 µm (Fig. 6.4), the muscle generates its maximum force of contraction.

Titin Filamentous Molecules Hold the Myosin and Actin Filaments in Place

  • The side-by-side arrangement of myosin and actin filaments is maintained by titin (also called connectin) (Fig. 6.2).
  • Titin is a long filamentous protein.
  • Each titin molecule has a molecular weight of about 3.9 million.
  • This makes titin one of the largest proteins in the human body.
  • Because titin is filamentous, it is highly elastic (springy).
  • The springy titin molecules form a framework that:
    • Holds the myosin and actin filaments in their correct positions.
    • Helps the contractile machinery of the sarcomere work effectively.
  • One end of the titin molecule is attached to the Z disk.
  • This end is elastic and acts like a spring.
  • It changes its length as the sarcomere contracts and relaxes.
  • The other end of the titin molecule is attached to the thick myosin filament.
  • This attachment anchors (tethers) the myosin filament in place.
  • Titin may also serve as a template during the initial formation of the contractile filaments of the sarcomere.
  • This role is especially important for the formation of myosin filaments.

KEY CONCEPT

  • Titin (connectin) maintains the alignment of actin and myosin filaments (Fig. 6.2).
  • Titin is one of the largest proteins in the body and is highly elastic.
  • It forms a spring-like framework that keeps the sarcomere organized during contraction and relaxation.
  • One end of titin is attached to the Z disk, and the other is attached to the myosin filament.
  • Titin may also help in the initial formation of the sarcomere, especially the myosin filaments.

Sarcoplasm Is the Intracellular Fluid Between Myofibrils

  • Many myofibrils are arranged side by side inside each muscle fiber (Fig. 6.1 and Fig. 6.3).
  • The spaces between the myofibrils are filled with an intracellular fluid called sarcoplasm.
  • The sarcoplasm contains large amounts of:
    • Potassium (K⁺).
    • Magnesium (Mg²⁺).
    • Phosphate.
    • Many protein enzymes.
  • The sarcoplasm also contains large numbers of mitochondria.
  • The mitochondria lie parallel to the myofibrils.
  • The mitochondria produce energy in the form of adenosine triphosphate (ATP).
  • This ATP supplies the energy needed for contraction of the myofibrils.

KEY CONCEPT

  • Sarcoplasm is the intracellular fluid present between the myofibrils (Fig. 6.1 and Fig. 6.3).
  • It contains large amounts of potassium, magnesium, phosphate, and many protein enzymes.
  • Numerous mitochondria are present parallel to the myofibrils.
  • Mitochondria produce ATP, which provides the energy required for muscle contraction.

Transverse Tubule–Sarcoplasmic Reticulum System of Skeletal Muscle

  • In the sarcoplasm surrounding each myofibril is an extensive membranous network called the sarcoplasmic reticulum (SR) (Fig. 6.3).
  • The enlarged ends of the sarcoplasmic reticulum are called the terminal cisternae.
  • The terminal cisternae are closely associated with the transverse tubules (T tubules).
  • The T tubules are extensions of the cell membrane.
  • The T tubules penetrate throughout the muscle fiber.
  • The T tubules surround each myofibril.
  • This arrangement allows action potentials to spread rapidly through the T tubules to the deep interior of the muscle fiber.
  • The T tubule–sarcoplasmic reticulum system is very important for regulating:
    • Storage of Ca²⁺.
    • Release of Ca²⁺.
    • Reuptake of Ca²⁺.
  • Therefore, this system plays an essential role in muscle contraction.
  • Rapidly contracting muscle fibers have an especially well-developed T tubule–sarcoplasmic reticulum system.

KEY CONCEPT

  • The sarcoplasmic reticulum (SR) is a membranous network surrounding the myofibrils (Fig. 6.3).
  • Its enlarged ends, called terminal cisternae, are closely associated with the T tubules.
  • T tubules are extensions of the cell membrane that carry action potentials deep into the muscle fiber.
  • The T tubule–SR system regulates Ca²⁺ storage, release, and reuptake, making it essential for muscle contraction.
  • Rapidly contracting muscle fibers have a highly developed T tubule–SR system.

PREPARE AND MADE BY SELF LEARNING DR SHEEN

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