DIAGNOSTIC RADIOGRAPHY · NTA LEVEL 4 · SEMESTER ONE
Muscle Tissue-Structure And Functions
CRT04101 · Anatomy, Physiology and Pathology
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Muscle Tissue
Muscle Tissue
- One of 4 primary tissue types, divided into:
- skeletal muscle
- cardiac muscle
- smooth muscle
Without these muscles, nothing in the body would move and no body movement would occur
Skeletal Muscles-
- Organs of skeletal muscle tissue
- are attached to the skeletal system and allow us to move
- Muscular System- Includes only skeletal muscles
Skeletal Muscle Structures
- Muscle tissue (muscle cells or fibers)
- Connective tissues
- Nerves
Blood vessels
6 Functions of Skeletal Muscles
- Produce skeletal movement
- Maintain body position and posture
- Support soft tissues
- Guard body openings (entrance/exit)
- Maintain body temperature
Store Nutrient reserves
Muscles serve specific functions in moving and positioning the body.
The same muscle may act as a prime mover, antagonist, synergist, or fixator under specific conditions.
The functions include.
A prime mover or agonist is the main muscle responsible for producing a specific movement of the body (e.g. concentric contraction).
Fixators steady the proximal parts of a limb while movements are occurring in distal parts.
A synergist complements the action of prime mover for example, by preventing movement of the intervening joint when a prime mover passes over more than one joint.
An antagonist is a muscle that opposes the action of a prime mover.
As a prime mover contracts, the antagonist progressively relax, producing a smooth movement
How is muscle tissue organized at the tissue level?
- Organization of Connective Tissues
Figure 10–1
Organization of Connective Tissues
- Muscles have 3 layers of connective tissues:
- Epimysium-Exterior collagen layer
- Connected to deep fascia
- Separates muscle from surrounding tissue
- perimysium- Surrounds muscle fiber bundles (fascicles)
- Contains blood vessel and nerve supply to fascicles
endomysium
3. Endomysium
- Surrounds individual muscle cells (muscle fibers)
- Contains capillaries and nerve fibers contacting muscle cells
Contains satellite cells (myogenic stem cells) that repair damage
Muscle Attachments
- Endomysium, perimysium, and epimysium come together:
| at ends of | muscles |
- to form connective tissue attachment to bone matrix
i.e., tendon (bundle) or aponeurosis (sheet)
Nerves
Skeletal muscles are voluntary muscles, controlled by nerves of the central nervous system
Blood Vessels
- Muscles have extensive vascular systems that:
- supply large amounts of oxygen
- supply nutrients
carry away wastes
What are the characteristics of skeletal muscle fibers?
- Skeletal muscle cells are called fibers
Figure 10–2
Skeletal Muscle Fibers
- Are very long
- Develop through fusion of mesodermal cells (myoblasts- embryonic cells))
- Become very large
- Contain hundreds of nuclei –multinucleate
Unfused cells are satellite cells- assist in repair after injury
Germ layers
Structures originating from germ layers
Organization of Skeletal Muscle Fibers
Figure 10–3
The Sarcolemma
- The cell membrane of a muscle cell
- Surrounds the sarcoplasm (cytoplasm of muscle fiber)
- A change in transmembrane potential begins contractions
| All regions of the cell must | contract simultaneously |
Transverse Tubules (T tubules)
- Transmit action potential – impulses through cell
- Allow entire muscle fiber to contract simultaneously
- Have same properties as sarcolemma
Filled with extracellular fluid
Muscle Striations
- A striped or striated pattern within myofibrils:
- alternating dark, thick filaments (A bands) and light, thin filaments (I bands)
Figure 10–6 (1 of 5)
Level 1: Skeletal Muscle
Level 2: Muscle Fascicle
Muscle Contraction
- Is caused by interactions of thick and thin filaments
Structures of protein molecules (actin and myosin) detemine interactions
Skeletal Muscle Contraction
Figure 10–9 (Navigator)
The Process of Contraction
- Neural stimulation of sarcolemma:
- causes excitation–contraction coupling
- Cisternae of Sarcoplasmic reticulum(SR) release Ca2+:
- which triggers interaction of thick and thin filaments
consuming ATP and producing tension
What are the structural and functional differences between skeletal muscle fibers and cardiac muscle cells?
Structure of Cardiac Tissue
- Cardiac muscle is striated-involuntary muscle, found only in the heart
Figure 10–22
7 Characteristics of Cardiocytes
- Unlike skeletal muscle, cardiac muscle cells (cardiocytes):
- are small
- have a single nucleus
have short, wide T tubules
7 Characteristics of Cardiocytes
- have no triads
- have SR with no terminal cisternae
- are aerobic (high in myoglobin, mitochondria)
have intercalated discs
4 Functions of Cardiac Tissue
| 1. | Automaticity: |
- –
- contraction without neural stimulation controlled
- Variable contraction tension:
| – | controlled |
- Extended contraction time
Prevention of wave summation and tetanic contractions
Role of Smooth Muscle in Body Systems
- Forms around other tissues
- In blood vessels:
- regulates blood pressure and flow
- In reproductive and glandular systems:
- produces movements
- In digestive and urinary systems:
- forms sphincters
- produces contractions
- In integumentary system:
arrector pili muscles cause goose bumps
Structure of Smooth Muscle
- Nonstriated tissue
Figure 10–23
8 Characteristics of Smooth Muscle Cells
- Long, slender, and spindle shaped
- Have a single, central nucleus
- Have no T tubules, myofibrils, or sarcomeres
Have no tendons or aponeuroses
8 Characteristics of Smooth Muscle Cells
- Have scattered myosin fibers
- Myosin fibers have more heads per thick filament
- Have thin filaments attached to dense bodies
Dense bodies transmit contractions from cell to cell
Functional Characteristics of Smooth Muscle
- Excitation–contraction coupling
- Length–tension relationships
- Control of contractions
Smooth muscle tone