뒤로Chapter 4: Tissue—The Living Fabric (Anatomy & Physiology Study Notes)
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Tissue: The Living Fabric
Introduction to Tissues
Tissues are groups of cells similar in structure that perform common or related functions, essential for maintaining homeostasis in the human body. The study of tissues is known as histology. There are four basic tissue types: epithelial, connective, muscle, and nervous tissue.

Epithelial tissue: Covers body surfaces and lines cavities.
Connective tissue: Supports, protects, and binds other tissues together.
Muscle tissue: Contracts to cause movement.
Nervous tissue: Enables internal communication by transmitting electrical impulses.
Epithelial Tissue
Overview and Functions
Epithelial tissue (epithelium) is a sheet of cells that covers body surfaces or lines body cavities. It exists in two main forms: covering and lining epithelia (e.g., skin, lining of organs) and glandular epithelia (e.g., secretory tissue in glands). Its main functions include protection, absorption, filtration, excretion, secretion, and sensory reception.
Special Characteristics of Epithelial Tissue
Polarity: Cells have an apical (top) surface and a basal (bottom) surface, each with distinct structures and functions.
Specialized contacts: Cells are tightly joined by junctions such as tight junctions and desmosomes.
Supported by connective tissues: The basement membrane (basal and reticular lamina) reinforces the epithelium.
Avascular but innervated: Contains no blood vessels but is supplied by nerve fibers; nutrients diffuse from underlying tissues.
Regeneration: High regenerative capacity, especially in areas exposed to friction or hostile environments.

Classification of Epithelia
Epithelia are classified by the number of cell layers and the shape of the cells.
Number of layers: Simple (one layer) or stratified (multiple layers).
Cell shape: Squamous (flat), cuboidal (cube-like), columnar (tall).


Types of Simple Epithelia
Simple squamous epithelium: Single layer of flat cells; allows rapid diffusion (e.g., alveoli of lungs, kidney glomeruli, endothelium, mesothelium).

Simple cuboidal epithelium: Single layer of cube-shaped cells; functions in secretion and absorption (e.g., kidney tubules, ducts of glands).

Simple columnar epithelium: Single layer of tall cells; may have microvilli or cilia; involved in absorption and secretion (e.g., digestive tract, gallbladder, uterine tubes).

Pseudostratified columnar epithelium: Appears multilayered but is a single layer; often ciliated; secretes and moves mucus (e.g., upper respiratory tract).

Types of Stratified Epithelia
Stratified squamous epithelium: Multiple layers; protects against abrasion; keratinized (skin) or nonkeratinized (moist linings).

Stratified cuboidal epithelium: Rare; found in sweat, mammary, and salivary glands; usually two layers thick.

Stratified columnar epithelium: Rare; found in pharynx, male urethra, and some glandular ducts.

Transitional epithelium: Lines urinary organs; cells change shape to allow stretching (e.g., bladder, ureters).

Glandular Epithelia
Glands are one or more cells that secrete an aqueous fluid called a secretion. They are classified by site of product release (endocrine or exocrine) and number of cells (unicellular or multicellular).
Endocrine glands: Ductless; secrete hormones into interstitial fluid, which enters the blood.
Exocrine glands: Secrete products into ducts or onto surfaces (e.g., sweat, oil, salivary glands).
Unicellular exocrine glands: Goblet cells and mucous cells; secrete mucin (forms mucus).

Multicellular exocrine glands: Composed of a duct and secretory unit; classified by duct structure (simple or compound) and secretory unit shape (tubular, alveolar, tubuloalveolar).

Modes of secretion: Merocrine (exocytosis), holocrine (cell rupture), apocrine (apex ruptures; controversial in humans).

Connective Tissue
Overview and Functions
Connective tissue is the most abundant and widely distributed tissue type. Its major functions include binding and support, protection, insulation, energy storage, and transport of substances (e.g., blood). The four main classes are connective tissue proper, cartilage, bone, and blood.


Common Characteristics of Connective Tissue
All arise from mesenchyme (embryonic tissue).
Varying degrees of vascularity (cartilage is avascular, bone is highly vascularized).
Composed of cells embedded in an extracellular matrix (ECM) of ground substance and fibers.
Structural Elements of Connective Tissue
Ground substance: Unstructured material filling space between cells; contains interstitial fluid, cell adhesion proteins, and proteoglycans.
Fibers: Collagen (strong), elastic (stretchy), and reticular (supportive networks).
Cells: "Blast" cells (immature, secrete matrix), "cyte" cells (mature, maintain matrix), fat cells, white blood cells, mast cells, and macrophages.


Types of Connective Tissue
Tissue Class | Subclasses | Cells | Matrix | General Features |
|---|---|---|---|---|
Connective Tissue Proper | Loose (areolar, adipose, reticular); Dense (regular, irregular, elastic) | Fibroblasts, fibrocytes, defense cells, adipocytes | Gel-like ground substance; all three fiber types | Binding, resisting tension, energy storage |
Cartilage | Hyaline, elastic, fibrocartilage | Chondroblasts, chondrocytes | Gel-like ground substance; collagen, elastic fibers | Resists compression, supports body structures |
Bone | Compact, spongy | Osteoblasts, osteocytes | Gel-like ground substance with inorganic salts; collagen fibers | Support, protection, stores calcium |
Blood | --- | Red and white blood cells, platelets | Plasma (fluid matrix) | Transport of gases, nutrients, wastes |











Muscle Tissue
Overview and Types
Muscle tissue is highly vascularized and responsible for movement. Muscle cells contain myofilaments (actin and myosin) for contraction. There are three types: skeletal, cardiac, and smooth muscle.
Skeletal muscle: Voluntary, striated, multinucleate; attached to bones for movement.

Cardiac muscle: Involuntary, striated, usually one nucleus per cell; found in heart walls; cells connected by intercalated discs.

Smooth muscle: Involuntary, non-striated, spindle-shaped cells; found in walls of hollow organs (except heart).

Nervous Tissue
Structure and Function
Nervous tissue is the main component of the nervous system (brain, spinal cord, nerves). It regulates and controls body functions. It consists of neurons (generate and conduct impulses) and glial cells (support, insulate, and protect neurons).

Covering and Lining Membranes
Types of Membranes
Membranes are composed of at least two primary tissue types: an epithelium bound to underlying connective tissue. The three main types are cutaneous, mucous, and serous membranes.
Cutaneous membrane: The skin; keratinized stratified squamous epithelium attached to connective tissue; dry membrane.

Mucous membranes (mucosae): Line body cavities open to the exterior; moist; may secrete mucus; epithelium over lamina propria.
Serous membranes (serosae): Line closed ventral body cavities; simple squamous epithelium (mesothelium) on areolar connective tissue; secrete serous fluid for lubrication (pleurae, pericardium, peritoneum).
Tissue Repair
Overview of Tissue Repair
When tissues are injured, the body initiates inflammatory and immune responses. Repair occurs by regeneration (replacement with same tissue) or fibrosis (replacement with scar tissue).
Inflammation: Release of chemicals, dilation of blood vessels, increased permeability, clotting.
Organization: Blood clot replaced by granulation tissue, epithelium regenerates, fibroblasts produce collagen, debris removed.
Regeneration and fibrosis: Scab detaches, tissue matures, epithelium thickens, scar tissue may remain.
Regenerative Capacity of Tissues
High capacity: Epithelial tissues, bone, areolar connective tissue, dense irregular connective tissue, blood-forming tissue.
Moderate capacity: Smooth muscle, dense regular connective tissue.
Low/none: Cardiac muscle, nervous tissue in brain and spinal cord.
Developmental Aspects of Tissues
Tissues function well through youth and middle age with proper nutrition and minimal injury. With aging, epithelia thin, repair is less efficient, and tissues such as bone, muscle, and nervous tissue atrophy. DNA mutations increase cancer risk.