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Human Anatomy and Physiology: 6. Bone Tissue and the Skeletal System

Human Anatomy and Physiology
6. Bone Tissue and the Skeletal System
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Notes

table of contents
  1. Cover
  2. Acknowledgements
  3. Part 1. Levels of Organization
    1. 1. An Introduction to the Human Body
      1. 1.1 Overview of Anatomy and Physiology
      2. 1.2 Structural Organization of the Human Body
      3. 1.3 Functions of Human Life
      4. 1.4 Homeostasis
      5. 1.5 Anatomical Terminology
    2. 2. The Chemical Level of Organization
      1. 2.1 Elements and Atoms: The Building Blocks of Matter
      2. 2.2 Chemical Bonds
      3. 2.3 Chemical Reactions
      4. 2.4 Inorganic Compounds Essential to Human Functioning
      5. 2.5 Organic Compounds Essential to Human Functioning
    3. 3. The Cellular Level of Organization
      1. 3.1 The Cell Membrane
      2. 3.2 The Cytoplasm and Cellular Organelles
      3. 3.3 The Nucleus and DNA Replication
      4. 3.4 Protein Synthesis
      5. 3.5 Cell Growth and Division
      6. 3.6 Cellular Differentiation
    4. 4. The Tissue Level of Organization
      1. 4.1 Types of Tissues
      2. 4.2 Epithelial Tissue
      3. 4.3 Connective Tissue Supports and Protects
      4. 4.4 Muscle Tissue and Motion
      5. 4.5 Nervous Tissue Mediates Perception and Response
  4. Part 2. Support and Movement
    1. 5. The Integumentary System
      1. 5.1 Layers of the Skin
      2. 5.2 Accessory Structures of the Skin
      3. 5.3 Functions of the Integumentary System
    2. 6. Bone Tissue and the Skeletal System
      1. 6.1 The Functions of the Skeletal System
      2. 6.2 Bone Classification
      3. 6.3 Bone Structure
      4. 6.4 Bone Formation and Development
      5. 6.5 Fractures: Bone Repair
      6. 6.6 Nutrition, Hormones, and Bone Tissue
      7. 6.7 Calcium Homeostasis: Interactions of the Skeletal System and Other Organ Systems
    3. 7. Axial Skeleton
      1. 7.1 Divisions of the Skeletal System
      2. 7.2 The Skull
      3. 7.3 The Vertebral Column
      4. 7.4 The Thoracic Cage
      5. 7.5 Embryonic Development of the Axial Skeleton
    4. 8. The Appendicular Skeleton
      1. 8.1 The Pectoral Girdles
      2. 8.2 Bones of the Upper Limb
      3. 8.3 The Pelvic Girdle and Pelvis
      4. 8.4 Bones of the Lower Limb
    5. 9. Joints
      1. 9.1 Classification of Joints
      2. 9.2 Fibrous Joints
      3. 9.3 Cartilaginous Joints
      4. 9.4 Synovial Joints
      5. 9.5 Types of Body Movements
      6. 9.6 Anatomy of Selected Synovial Joints
    6. 10. Muscle Tissue
      1. 10.1 Overview of Muscle Tissues
      2. 10.2 Skeletal Muscle
      3. 10.3 Muscle Fibre Contraction and Relaxation
      4. 10.4 Nervous System Control of Muscle Tension
      5. 10.5 Types of Muscle Fibres
      6. 10.6 Cardiac Muscle Tissue
      7. 10.7 Smooth Muscle
    7. 11. The Muscular System
      1. 11.1 Interactions of Skeletal Muscles, Their Fascicle Arrangement, and Their Lever Systems
      2. 11.2 Naming Skeletal Muscles
      3. 11.3 Axial Muscles of the Head, Neck, and Back
      4. 11.4 Axial Muscles of the Abdominal Wall and Thorax
      5. 11.5 Muscles of the Pectoral Girdle and Upper Limbs
      6. 11.6 Appendicular Muscles of the Pelvic Girdle and Lower Limbs
  5. Part 3. Regulation, Integration, and Control
    1. 12. The Nervous System and Nervous Tissue
      1. 12.1 Basic Structure and Function of the Nervous System
      2. 12.2 Nervous Tissue
      3. 12.3 The Functions of Nervous Tissue
      4. 12.4 The Action Potential
      5. 12.5 Communication Between Neurons
    2. 13. Anatomy of the Nervous System
      1. 13.1 The Central Nervous System
      2. 13.2 Circulation and the Central Nervous System
      3. 13.3 The Peripheral Nervous System
    3. 14. The Somatic Nervous System
      1. 14.1 Sensory Perception
      2. 14.2 Central Processing
      3. 14.3 Motor Responses
    4. 15. The Autonomic Nervous System
      1. 15.1 Divisions of the Autonomic Nervous System
      2. 15.2 Autonomic Reflexes and Homeostasis
      3. 15.3 Central Control
    5. 16. The Endocrine System
      1. 16.1 An Overview of the Endocrine System
      2. 16.2 Hormones
      3. 16.3 The Pituitary Gland and Hypothalamus
      4. 16.4 The Thyroid Gland
      5. 16.5 The Parathyroid Glands
      6. 16.6 The Adrenal Glands
      7. 16.7 The Pineal Gland
      8. 16.8 Gonadal and Placental Hormones
      9. 16.9 The Endocrine Pancreas
      10. 16.10 Organs with Secondary Endocrine Functions
  6. Part 4. Fluids and Transport
    1. 17. The Cardiovascular System: Blood
      1. 17.1 An Overview of Blood
      2. 17.2 Production of the Formed Elements
      3. 17.3 Erythrocytes
      4. 17.4 Leukocytes and Platelets
      5. 17.5 Hemostasis
      6. 17.6 Blood Typing
    2. 18. The Cardiovascular System: The Heart
      1. 18.1 Heart Anatomy
      2. 18.2 Cardiac Muscle and Electrical Activity
      3. 18.3 Cardiac Cycle
      4. 18.4 Cardiac Physiology
    3. 19. The Cardiovascular System: Blood Vessels and Circulation
      1. 19.1 Structure and Function of Blood Vessels
      2. 19.2 Blood Flow, Blood Pressure, and Resistance
      3. 19.3 Capillary Exchange
      4. 19.4 Homeostatic Regulation of the Vascular System
      5. 19.5 Circulatory Pathways
      6. 19.6 Development of Blood Vessels and Fetal Circulation
    4. 20. The Lymphatic and Immune System
      1. 20.1 Anatomy of the Lymphatic and Immune Systems
      2. 20.2 Barrier Defences and the Innate Immune Response
      3. 20.3 The Adaptive Immune Response: T Lymphocytes and Their Functional Types
      4. 20.4 The Adaptive Immune Response: B Lymphocytes and Antibodies
  7. Part 5. Energy, Maintenance, and Environmental Exchange
    1. 21. The Respiratory System
      1. 21.1 Organs and Structures of the Respiratory System
      2. 21.2 The Lungs
      3. 21.3 The Process of Breathing
      4. 21.4 Gas Exchange
      5. 21.5 Transport of Gases
    2. 22. The Digestive System
      1. 22.1 Overview of the Digestive System
      2. 22.2 Digestive System Processes and Regulation
      3. 22.3 The Mouth, Pharynx, and Esophagus
      4. 22.4 The Stomach
      5. 22.5 The Small and Large Intestines
      6. 22.6 Accessory Organs in Digestion: The Liver, Pancreas, and Gallbladder
      7. 22.7 Chemical Digestion and Absorption: A Closer Look
    3. 23. Metabolism and Nutrition
      1. 23.1 Overview of Metabolic Reactions
      2. 23.2 Carbohydrate Metabolism
      3. 23.3 Lipid Metabolism
      4. 23.4 Protein Metabolism
      5. 23.5 Metabolic States of the Body
      6. 23.6 Energy and Heat Balance
      7. 23.7 Nutrition and Diet
    4. 24. The Urinary System
      1. 24.1 Physical Characteristics of Urine
      2. 24.2 Gross Anatomy of Urine Transport
      3. 24.3 Gross Anatomy of the Kidney
      4. 24.4 Microscopic Anatomy of the Kidney
      5. 24.5 Physiology of Urine Formation
      6. 24.6 Tubular Reabsorption
      7. 24.7 Regulation of Renal Blood Flow
      8. 24.8 Endocrine Regulation of Kidney Function
      9. 24.9 The Urinary System and Homeostasis
    5. 25. Fluid, Electrolyte, and Acid-Base Balance
      1. 25.1 Body Fluids and Fluid Compartments
      2. 25.2 Water Balance
      3. 25.3 Electrolyte Balance
      4. 25.4 Acid-Base Balance
      5. 25.5 Disorders of Acid-Base Balance
  8. Part 6. Human Development and the Continuity of Life
    1. 26. The Reproductive System
      1. 26.1 Anatomy and Physiology of the Testicular Reproductive System
      2. 26.2 Anatomy and Physiology of the Ovarian Reproductive System
    2. 27. Development and Inheritance
      1. 27.1 Fertilization
      2. 27.2 Embryonic Development
      3. 27.3 Fetal Development
      4. 27.4 Changes During Pregnancy, Labour, and Birth
      5. 27.5 Adjustments of the Infant at Birth and Postnatal Stages
      6. 27.6 Lactation
  9. Glossary
  10. Figure Descriptions

Chapter6 Bone Tissue and the Skeletal System

Chapter Objectives

After studying this chapter, you will be able to:

  • • List and describe the functions of bones
  • • Describe the classes of bones
  • • Discuss the process of bone formation and development
  • • Explain how bone repairs itself after a fracture
  • • Discuss the effect of exercise, nutrition, and hormones on bone tissue
  • • Describe how an imbalance of calcium can affect bone tissue

Bones make good fossils. While the soft tissue of a once-living organism will decay and fall away over time, bone tissue will, under the right conditions, undergo a process of mineralization, effectively turning the bone to stone. A well-preserved fossil skeleton can give us a good sense of the size and shape of an organism, just as your skeleton helps define your size and shape. Unlike a fossil skeleton, however, your skeleton is a structure of living tissue that grows, repairs, and renews itself. The bones within it are dynamic and complex organs that serve a number of important functions, including some necessary to maintain homeostasis.

6.1 The Functions of the Skeletal System

Learning Objectives

By the end of this section, you will be able to:

  • • Define bone, cartilage, and the skeletal system
  • • List and describe the functions of the skeletal system

Bone, or osseous tissue, is a hard, dense connective tissue that forms most of the adult skeleton, the support structure of the body. In the areas of the skeleton where bones move (for example, the ribcage and joints), cartilage, a semirigid form of connective tissue, provides flexibility and smooth surfaces for movement. The skeletal system is the body system composed of bones and cartilage and performs the following critical functions for the human body:

  • • supports the body
  • • facilitates movement
  • • protects internal organs
  • • produces blood cells
  • • stores and releases minerals and fat

Support, Movement, and Protection

The most apparent functions of the skeletal system are the gross functions—those visible by observation. Simply by looking at a person, you can see how the bones support, facilitate movement, and protect the human body.

Just as the steel beams of a building provide a scaffold to support its weight, the bones and cartilage of your skeletal system compose the scaffold that supports the rest of your body. Without the skeletal system, you would be a limp mass of organs, muscle, and skin.

Bones also facilitate movement by serving as points of attachment for your muscles. While some bones only serve as a support for the muscles, others also transmit the forces produced when your muscles contract. From a mechanical point of view, bones act as levers and joints serve as fulcrums. Unless a muscle spans a joint and contracts, a bone is not going to move.

Bones also protect internal organs from injury by covering or surrounding them. For example, your ribs protect your lungs and heart, the bones of your vertebral column (spine) protect your spinal cord, and the bones of your cranium (skull) protect your brain.

Mineral Storage, Energy Storage, and Hematopoiesis

On a metabolic level, bone tissue performs several critical functions. For one, the bone matrix acts as a reservoir for a number of minerals important to the functioning of the body, especially calcium, and phosphorus. These minerals, incorporated into bone tissue, can be released back into the bloodstream to maintain levels needed to support physiological processes. Calcium ions, for example, are essential for muscle contractions and controlling the flow of other ions involved in the transmission of nerve impulses.

Bone also serves as a site for fat storage and blood cell production. The softer connective tissue that fills the interior of most bone is referred to as bone marrow (Figure 6.1). There are two types of bone marrow: yellow marrow and red marrow. Yellow marrow contains adipose tissue; the triglycerides stored in the adipocytes of the tissue can serve as a source of energy. Red marrow is where hematopoiesis—the production of blood cells—takes place. Red blood cells, white blood cells, and platelets are all produced in the red marrow.

Figure 6.1 is a photograph of the head of a femur detached from the rest of the bone. The compact bone at the surface of the head has been removed to show the spongy bone beneath. A circle of yellow marrow is located at the centre of the spongy bone. Red marrow surrounds the yellow marrow, occupying most of the interior space of the femoral head.

Figure 6.1  Head of Femur Showing Red and Yellow Marrow. The head of the femur contains both yellow and red marrow. Yellow marrow stores fat. Red marrow is responsible for hematopoiesis. (credit: modification of work by “stevenfruitsmaak”/Wikimedia Commons)

6.2 Bone Classification

Learning Objectives

By the end of this section, you will be able to:

  • • Classify bones according to their shapes
  • • Describe the function of each category of bones

The 206 bones that compose the adult skeleton are divided into five categories based on their shapes (Figure 6.2). Their shapes and their functions are related such that each categorical shape of bone has a distinct function.

Long Bones

A long bone is one that is cylindrical in shape, being longer than it is wide. Keep in mind, however, that the term describes the shape of a bone, not its size. Long bones are found in the arms (humerus, ulna, radius) and legs (femur, tibia, fibula) as well as in the fingers (metacarpals, phalanges) and toes (metatarsals, phalanges). Long bones function as levers; they move when muscles contract.

Short Bones

A short bone is one that is cube-like in shape, being approximately equal in length, width, and thickness. The only short bones in the human skeleton are in the carpals of the wrists and the tarsals of the ankles. Short bones provide stability and support as well as some limited motion.

Flat Bones

The term flat bone is somewhat of a misnomer because although a flat bone is typically thin, it is also often curved. Examples include the cranial (skull) bones, the scapulae (shoulder blades), the sternum (breastbone), and the ribs. Flat bones serve as points of attachment for muscles and often protect internal organs.

Irregular Bones

An irregular bone is one that does not have any easily characterized shape and therefore does not fit any other classification. These bones tend to have more complex shapes, like the vertebrae that support the spinal cord and protect it from compressive forces. Many facial bones, particularly the ones containing sinuses, are classified as irregular bones.

Figure 6.2 is a diagram of the skeleton emphasizing five categories of bones with examples of each. These are flat bones like the sternum, long bones like the femur, sesamoid bones like the patella, irregular bones like vertebrae, and short bones like the lateral, intermediate, and medial cuneiform.

Figure 6.2  Classifications of Bones. Bones are classified according to their shape.

Sesamoid Bones

A sesamoid bone is a small, round bone that, as the name suggests, is shaped like a sesame seed. These bones form in tendons (the sheaths of tissue that connect bones to muscles) where a great deal of pressure is generated in a joint. The sesamoid bones protect tendons by helping them overcome compressive forces. Sesamoid bones vary in number and placement from person to person but are typically found in tendons associated with the feet, hands, and knees. The patellae (singular = patella) are the only sesamoid bones found in common with every person. Table 6.1 reviews bone classifications with their associated features, functions, and examples.

Table 6.1 Bone Classifications

Bone classification

Features

Function(s)

Examples

Long

Cylinder-like shape, longer than it is wide

Leverage

Femur, tibia, fibula, metatarsals, humerus, ulna, radius, metacarpals, phalanges

Short

Cube-like shape, approximately equal in length, width, and thickness

Provide stability, support, while allowing for some motion

Carpals, tarsals

Flat

Thin and curved

Points of attachment for muscles; protectors of internal organs

Sternum, ribs, scapulae, cranial bones

Irregular

Complex shape

Protect internal organs

Vertebrae, facial bones

Sesamoid

Small and round; embedded in tendons

Protect tendons from compressive forces

Patellae

6.3 Bone Structure

Learning Objectives

By the end of this section, you will be able to:

  • • Identify the anatomical features of a bone
  • • Define and list examples of bone markings
  • • Describe the histology of bone tissue
  • • Compare and contrast compact and spongy bone
  • • Identify the structures that compose compact and spongy bone
  • • Describe how bones are nourished and innervated

Bone tissue (osseous tissue) differs greatly from other tissues in the body. Bone is hard, and many of its functions depend on that characteristic hardness. Later discussions in this chapter will show that bone is also dynamic in that its shape adjusts to accommodate stresses. This section will examine the gross anatomy of bone first and then move on to its histology.

Gross Anatomy of Bone

The structure of a long bone allows for the best visualization of all the parts of a bone (Figure 6.3). A long bone has two parts: the diaphysis and the epiphysis. The diaphysis is the tubular shaft that runs between the proximal and distal ends of the bone. The hollow region in the diaphysis is called the medullary cavity, which is filled with yellow marrow. The walls of the diaphysis are composed of dense and hard compact bone.

The wider section at each end of the bone is called the epiphysis (plural = epiphyses), which is filled with spongy bone. Red marrow fills the spaces in the spongy bone. Each epiphysis meets the diaphysis at the metaphysis, the narrow area that contains the epiphyseal plate (growth plate), a layer of hyaline (transparent) cartilage in a growing bone. When the bone stops growing in early adulthood (approximately 18–21 years), the cartilage is replaced by osseous tissue and the epiphyseal plate becomes an epiphyseal line.

Figure 6.3 is a diagram of a femur in partial cross-section so that both interior and exterior structures are visible. The bone is divided into regions of the proximal and distal epiphysis, metaphysis, and diaphysis. Refer to the extended description for more details.

Figure 6.3  Anatomy of a Long Bone. A typical long bone shows the gross anatomical characteristics of bone.

Extended description

The medullary cavity has a delicate membranous lining called the endosteum, where bone growth, repair, and remodelling occur. The outer surface of the bone is covered with a fibrous membrane called the periosteum. The periosteum contains blood vessels, nerves, and lymphatic vessels that nourish compact bone. Tendons and ligaments also attach to bones at the periosteum. The periosteum covers the entire outer surface except where the epiphyses meet other bones to form joints (Figure 6.4). In this region, the epiphyses are covered with articular cartilage, a thin layer of cartilage that reduces friction and acts as a shock absorber.

Flat bones, like those of the cranium, consist of a layer of spongy bone (diploë) lined on either side by a layer of compact bone (Figure 6.5). The two layers of compact bone and the interior spongy bone work together to protect the internal organs. If the outer layer of a cranial bone fractures, the brain is still protected by the intact inner layer.

Figure 6.4 is a diagram of the proximal end of the femur with detailed close-up views of the periosteum and endosteum. Refer to the extended description for more details.

Figure 6.4  Periosteum and Endosteum. The periosteum forms the outer surface of bone, and the endosteum lines the medullary cavity.

Extended description

Figure 6.5 is a diagram of a cross-section of a cranial bone with three types of layers visible. The thin inner and outer layers are the periosteum. The thick middle layer is the spongy bone, or diploe. Between this and the periosteum are layers of compact bone.

Figure 6.5  Anatomy of a Flat Bone. This cross-section of a flat bone shows the spongy bone (diploë) lined on either side by a layer of compact bone.

Bone Markings

The surface features of bones vary considerably, depending on the function and location in the body. Table 6.2 describes the bone markings, which are illustrated in Figure 6.6. There are three general classes of bone markings: (1) articulations, (2) projections, and (3) holes. As the name implies, an articulation is where two bone surfaces come together. These surfaces tend to conform to one another, such as one being rounded and the other cupped, to facilitate the function of the articulation. A projection is an area of a bone that projects above the surface of the bone. These are the attachment points for tendons and ligaments. In general, their size and shape are indications of the forces exerted through the attachment to the bone. A hole is an opening or groove in the bone that allows blood vessels and nerves to enter the bone. As with the other markings, their size and shape reflect the size of the vessels and nerves that penetrate the bone at these points.

Bone Cells and Tissue

Bone contains a relatively small number of cells entrenched in a matrix of collagen fibres that provide a surface for inorganic salt crystals to adhere. These salt crystals form when calcium phosphate and calcium carbonate combine to create hydroxyapatite, which incorporates other inorganic salts like magnesium hydroxide, fluoride, and sulfate as it crystallizes, or calcifies, on the collagen fibres. The hydroxyapatite crystals give bones their hardness and strength, while the collagen fibres give them flexibility so that they are not brittle.

Table 6.2 Bone Markings

Marking

Description

Example

Articulations

Where two bones meet

Knee joint

Head

Prominent rounded surface

Head of femur

Facet

Flat surface

Vertebrae

Condyle

Rounded surface

Occipital condyles

Projections

Raised markings

Spinous process of the vertebrae

Protuberance

Protruding

Chin

Process

Prominence feature

Transverse process of vertebra

Spine

Sharp process

Ischial spine

Tubercle

Small, rounded process

Tubercle of humerus

Tuberosity

Rough surface

Deltoid tuberosity

Line

Slight, elongated ridge

Temporal lines of the parietal bones

Crest

Ridge

Iliac crest

Holes

Holes and depressions

Foramen (holes that blood vessels can pass through)

Fossa

Elongated basin

Mandibular fossa

Fovea

Small pit

Fovea capitis on the head of the femur

Sulcus

Groove

Sigmoid sulcus of the temporal bones

Canal

Passage in bone

Auditory canal

Fissure

Slit through bone

Auricular fissure

Foramen

Hole through bone

Foramen magnum in the occipital bone

Meatus

Opening into canal

External auditory meatus

Sinus

Air-filled space in bone

Nasal sinus

Although bone cells compose a small amount of the bone volume, they are crucial to the function of bones. Four types of cells are found within bone tissue: osteoblasts, osteocytes, osteogenic cells, and osteoclasts (Figure 6.7).

The osteoblast is the bone cell responsible for forming new bone and is found in the growing portions of bone, including the periosteum and endosteum. Osteoblasts, which do not divide, synthesize and secrete the collagen matrix and calcium salts. As the secreted matrix surrounding the osteoblast calcifies, the osteoblast becomes trapped within it; as a result, it changes in structure and becomes an osteocyte, the primary cell of mature bone and the most common type of bone cell. Each osteocyte is located in a space called a lacuna surrounded by bone tissue. Osteocytes maintain the mineral concentration of the matrix via the secretion of enzymes. Like osteoblasts, osteocytes lack mitotic activity. They can communicate with each other and receive nutrients via long cytoplasmic processes that extend through canaliculi (singular = canaliculus), channels within the bone matrix.

Figure 6.6 is a three-part diagram giving examples of different structures of bones. The heads of a femur and humerus are given as examples of processes formed where tendons or ligaments attach, while their condyles are examples of processes formed to articulate with adjacent bones. The pelvis provides examples of elevation and depression, and the skull has examples of openings. Refer to the extended description for more details.

Figure 6.6  Bone Features. The surface features of bones depend on their function, their location, the attachment of ligaments and tendons, and the penetration of blood vessels and nerves.

Extended description

Figure 6.7 is a diagram of a generic bone cross-section with four types of cells and their basic functions indicated. These are the osteocyte maintaining bone tissue, the osteoblast forming the bone matrix, the osteoclast reabsorbing bone, and osteogenic cells, or stem cells. Refer to the extended description for more details.

Figure 6.7  Bone Cells. Four types of cells are found within bone tissue. Osteogenic cells are undifferentiated and develop into osteoblasts. When osteoblasts get trapped within the calcified matrix, their structure and function change, and they become osteocytes. Osteoclasts develop from monocytes and macrophages and differ in appearance from other bone cells.

Extended description

If osteoblasts and osteocytes are incapable of mitosis, then how are they replenished when old ones die? The answer lies in the properties of a third category of bone cells—the osteogenic cell. These osteogenic cells are undifferentiated with high mitotic activity, and they are the only bone cells that divide. Immature osteogenic cells are found in the deep layers of the periosteum and the marrow. They differentiate and develop into osteoblasts.

The dynamic nature of bone means that new tissue is constantly formed, and old, injured, or unnecessary bone is dissolved for repair or for calcium release. The cells responsible for bone resorption, or breakdown, are osteoclasts. They are found on bone surfaces, are multinucleated, and originate from monocytes and macrophages, two types of white blood cells, not from osteogenic cells. Osteoclasts are continually breaking down old bone while osteoblasts are continually forming new bone. The ongoing balance between osteoblasts and osteoclasts is responsible for the constant but subtle reshaping of bone. Table 6.3 reviews the bone cells, their functions, and their locations.

Table 6.3 Bone Cells

Cell type

Function

Location

Osteogenic cells

Develop into osteoblasts

Deep layers of the periosteum and the marrow

Osteoblasts

Bone formation

Growing portions of bone, including periosteum and endosteum

Osteocytes

Maintain mineral concentration of matrix

Entrapped in matrix

Osteoclasts

Bone resorption

Bone surfaces and at sites of old, injured, or unneeded bone

Compact and Spongy Bone

The differences between compact and spongy bone are best explored via their histology. Most bones contain compact and spongy osseous tissue, but their distribution and concentration vary based on the bone’s overall function. Compact bone is dense so that it can withstand compressive forces, while spongy (cancellous) bone has open spaces and supports shifts in weight distribution.

Compact Bone

Compact bone is the denser, stronger of the two types of bone tissue (Figure 6.8). It can be found under the periosteum and in the diaphyses of long bones, where it provides support and protection.

The microscopic structural unit of compact bone is called an osteon, or Haversian system. Each osteon is composed of concentric rings of calcified matrix called lamellae (singular = lamella). Running down the centre of each osteon is the central canal, or Haversian canal, which contains blood vessels, nerves, and lymphatic vessels. These vessels and nerves branch off at right angles through a perforating canal, also known as Volkmann’s canals, to extend to the periosteum and endosteum.

The osteocytes are located inside spaces called lacunae (singular = lacuna), found at the borders of adjacent lamellae. As described earlier, canaliculi connect with the canaliculi of other lacunae and eventually with the central canal. This system allows nutrients to be transported to the osteocytes and wastes to be removed from them.

Figure 6.8 is a two-part diagram of a generic long bone in cross-section with a detailed close-up view and micrograph of the compact bone region. Many structures are labelled, in particular the blood and lymphatic vessels, nerves, osteons, and canals. Refer to the extended description for more details.

Figure 6.8  Diagram of Compact Bone. (a) This cross-sectional view of compact bone shows the basic structural unit, the osteon. (b) In this micrograph of the osteon, you can clearly see the concentric lamellae and central canals. LM × 40. (Micrograph provided by the Regents of University of Michigan Medical School © 2012)

Extended description

Spongy (Cancellous) Bone

Like compact bone, spongy bone, also known as cancellous bone, contains osteocytes housed in lacunae, but they are not arranged in concentric circles. Instead, the lacunae and osteocytes are found in a latticelike network of matrix spikes called trabeculae (singular = trabecula; Figure 6.9). The trabeculae may appear to be a random network, but each trabecula forms along lines of stress to provide strength to the bone. The spaces of the trabeculated network provide balance to the dense and heavy compact bone by making bones lighter so that muscles can move them more easily. In addition, the spaces in some spongy bones contain red marrow, protected by the trabeculae, where hematopoiesis occurs.

Figure 6.9 is a diagram of the spongy bone within the proximal epiphysis of the femur in two successively magnified illustrations. The first illustration shows layers of crisscrossing trabeculae with canaliculi openings on their surface, and the second shows a cross-section of the trabeculae, revealing its component structures. Refer to the extended description for more details.

Figure 6.9  Diagram of Spongy Bone. Spongy bone is composed of trabeculae that contain the osteocytes. Red marrow fills the spaces in some bones.

Extended description

Blood and Nerve Supply

The spongy bone and medullary cavity receive nourishment from arteries that pass through the compact bone. The arteries enter through the nutrient foramina (singular = foramen), small openings in the diaphysis (Figure 6.10). The osteocytes in spongy bone are nourished by blood vessels of the periosteum that penetrate spongy bone and blood that circulates in the marrow cavities. As the blood passes through the marrow cavities, it is collected by veins, which then pass out of the bone through the foramina.

In addition to the blood vessels, nerves follow the same paths into the bone, where they tend to concentrate in the more metabolically active regions of the bone. The nerves sense pain, and it appears the nerves also play roles in regulating blood supplies and in bone growth, hence their concentrations in metabolically active sites of the bone.

Figure 6.10 is a diagram of an anterior view of the femur in cross-section, showing the primary arteries and veins. These are the epiphyseal, nutrient, and metaphyseal arteries and veins. Refer to the extended description for more details.

Figure 6.10  Diagram of Blood and Nerve Supply to Bone. Blood vessels and nerves enter the bone through the nutrient foramen.

Extended description

Interactive Link 6.1

Watch this video (http://oer.aupress.ca/oer-202505/6.1) to see the microscopic features of a bone.

6.4 Bone Formation and Development

Learning Objectives

By the end of this section, you will be able to:

  • • Explain the function of cartilage
  • • List the steps of intramembranous ossification
  • • List the steps of endochondral ossification
  • • Explain the growth activity at the epiphyseal plate
  • • Compare and contrast the processes of modelling and remodelling

In the early stages of embryonic development, the embryo’s skeleton consists of fibrous membranes and hyaline cartilage. By the sixth or seventh week of embryonic life, the actual process of bone development, ossification (osteogenesis), begins. There are two osteogenic pathways—intramembranous ossification and endochondral ossification—but bone is the same regardless of the pathway that produces it.

Cartilage Templates

Bone is a replacement tissue; that is, it uses a model tissue on which to lay down its mineral matrix. For skeletal development, the most common template is cartilage. During fetal development, a framework is laid down that determines where bones will form. This framework is a flexible, semisolid matrix produced by chondroblasts and consists of hyaluronic acid, chondroitin sulfate, collagen fibres, and water. As the matrix surrounds and isolates chondroblasts, they are called chondrocytes. Unlike most connective tissues, cartilage is avascular, meaning that it has no blood vessels supplying nutrients and removing metabolic wastes. All these functions are carried on by diffusion through the matrix. This is why damaged cartilage does not repair itself as readily as most tissues do.

Throughout fetal development and into childhood growth and development, bone forms on the cartilaginous matrix. By the time a fetus is born, most of the cartilage has been replaced with bone. Some additional cartilage will be replaced throughout childhood, and some cartilage remains in the adult skeleton.

Intramembranous Ossification

During intramembranous ossification, compact and spongy bone develop directly from sheets of mesenchymal (undifferentiated) connective tissue. The flat bones of the face, most of the cranial bones, and the clavicles (collarbones) are formed via intramembranous ossification.

The process begins when mesenchymal cells in the embryonic skeleton gather together and begin to differentiate into specialized cells (Figure 6.11a). Some of these cells will differentiate into capillaries, while others will become osteogenic cells and then osteoblasts. Although they will ultimately be spread out by the formation of bone tissue, early osteoblasts appear in a cluster called an ossification centre.

The osteoblasts secrete osteoid, uncalcified matrix, which calcifies (hardens) within a few days as mineral salts are deposited on it, thereby entrapping the osteoblasts within. Once entrapped, the osteoblasts become osteocytes (Figure 6.11b). As osteoblasts transform into osteocytes, osteogenic cells in the surrounding connective tissue differentiate into new osteoblasts.

Figure 6.11 is a four-part diagram showing the stages of ossification of intramembranous bone tissue. First, ossification centres form, then osteoblasts become osteocytes as the new bone matrix calcifies. Trabecular bone forms around capillaries, which crowd nearby blood vessels until they condense into red marrow. Refer to the extended description for more details.

Figure 6.11  Intramembranous Ossification. Intramembranous ossification follows four steps. (a) Mesenchymal cells group into clusters, and ossification centres form. (b) Secreted osteoid traps osteoblasts, which then become osteocytes. (c) Trabecular matrix and periosteum form. (d) Compact bone develops superficial to the trabecular bone, and crowded blood vessels condense into red marrow.

Extended description

Osteoid (unmineralized bone matrix) secreted around the capillaries results in a trabecular matrix, while osteoblasts on the surface of the spongy bone become the periosteum (Figure 6.11c). The periosteum then creates a protective layer of compact bone superficial to the trabecular bone. The trabecular bone crowds nearby blood vessels, which eventually condense into red marrow (Figure 6.11d).

Intramembranous ossification begins in utero during fetal development and continues on into adolescence. At birth, the skull and clavicles are not fully ossified, nor are the sutures of the skull closed. This allows the skull and shoulders to deform during passage through the birth canal. The last bones to ossify via intramembranous ossification are the flat bones of the face, which reach their adult size at the end of the adolescent growth spurt.

Endochondral Ossification

In endochondral ossification, bone develops by replacing hyaline cartilage. Cartilage does not become bone. Instead, cartilage serves as a template to be completely replaced by new bone. Endochondral ossification takes much longer than intramembranous ossification. Bones at the base of the skull and long bones form via endochondral ossification.

In a long bone, for example, at about 6 to 8 weeks after conception, some of the mesenchymal cells differentiate into chondrocytes (cartilage cells) that form the cartilaginous skeletal precursor of the bones (Figure 6.12a). Soon after, the perichondrium, a membrane that covers the cartilage, appears (Figure 6.12b).

As more matrix is produced, the chondrocytes in the centre of the cartilaginous model grow in size. As the matrix calcifies, nutrients can no longer reach the chondrocytes. This results in their death and the disintegration of the surrounding cartilage. Blood vessels invade the resulting spaces, not only enlarging the cavities but also carrying osteogenic cells with them, many of which will become osteoblasts. These enlarging spaces eventually combine to become the medullary cavity.

As the cartilage grows, capillaries penetrate it. This penetration initiates the transformation of the perichondrium into the bone-producing periosteum. Here, the osteoblasts form a periosteal collar of compact bone around the cartilage of the diaphysis. By the second or third month of fetal life, bone cell development and ossification ramp up and create the primary ossification centre, a region deep in the periosteal collar where ossification begins (Figure 6.12c).

While these deep changes are occurring, chondrocytes and cartilage continue to grow at the ends of the bone (the future epiphyses), which increases the bone’s length at the same time bone is replacing cartilage in the diaphyses (Figure 6.12d). By the time the fetal skeleton is fully formed, cartilage only remains at the joint surface as articular cartilage and between the diaphysis and epiphysis as the epiphyseal plate, the latter of which is responsible for the longitudinal growth of bones. After birth, this same sequence of events (matrix mineralization, death of chondrocytes, invasion of blood vessels from the periosteum, and seeding with osteogenic cells that become osteoblasts) occurs in the epiphyseal regions, and each of these centres of activity is referred to as a secondary ossification centre (Figure 6.12e).

Figure 6.12 is a six-part diagram showing the stages of endochondral ossification. First, the calcified matrix ossifies to become spongy bone. As the medullary cavity develops, calcified and uncalcified matrix form, pushing toward the perichondrium, where a second ossification centre ultimately forms. Refer to the extended description for more details.

Figure 6.12  Endochondral Ossification. Endochondral ossification follows five steps. (a) Mesenchymal cells differentiate into chondrocytes. (b) The cartilage model of the future bony skeleton and the perichondrium form. (c) Capillaries penetrate cartilage. Perichondrium transforms into periosteum. Periosteal collar develops. Primary ossification centre develops. (d) Cartilage and chondrocytes continue to grow at ends of the bone. (e) Secondary ossification centres develop. Cartilage remains at epiphyseal (growth) plate and at joint surface as articular cartilage.

Extended description

How Bones Grow in Length

The epiphyseal plate is the area of growth in a long bone. It is a layer of hyaline cartilage where ossification occurs in immature bones. On the epiphyseal side of the epiphyseal plate, cartilage is formed. On the diaphyseal side, cartilage is ossified, and the diaphysis grows in length. Bones continue to grow in length until early adulthood. The rate of growth is controlled by hormones, which will be discussed later. When the chondrocytes in the epiphyseal plate cease their proliferation and bone replaces the cartilage, longitudinal growth stops. All that remains of the epiphyseal plate is the epiphyseal line.

How Bones Grow in Diameter

While bones are increasing in length, they are also increasing in diameter; growth in diameter can continue even after longitudinal growth ceases. This is called appositional growth. Osteoclasts resorb old bone that lines the medullary cavity, while osteoblasts, via intramembranous ossification, produce new bone tissue beneath the periosteum. The erosion of old bone along the medullary cavity and the deposition of new bone beneath the periosteum not only increase the diameter of the diaphysis but also increase the diameter of the medullary cavity. This process is called modelling.

Bone Remodelling

The process in which matrix is resorbed on one surface of a bone and deposited on another is known as bone modelling. Modelling primarily takes place during a bone’s growth. However, in adult life, bone undergoes remodelling, in which resorption of old or damaged bone takes place on the same surface where osteoblasts lay new bone to replace that which is resorbed. Injury, exercise, and other activities lead to remodelling. Those influences are discussed later in the chapter, but even without injury or exercise, about 5 to 10 percent of the skeleton is remodelled annually just by destroying old bone and renewing it with fresh bone.

Interactive Link 6.2

Watch this video (http://oer.aupress.ca/oer-202505/6.2) to see how a bone grows.

6.5 Fractures: Bone Repair

Learning Objectives

By the end of this section, you will be able to:

  • • Differentiate among the closed and open reductions
  • • Describe the steps involved in bone repair

A fracture is a broken bone. It will heal whether or not a physician resets it in its anatomical position. If the bone is not reset correctly, the healing process will keep the bone in its deformed position.

When a broken bone is manipulated and set into its natural position without surgery, the procedure is called a closed reduction. Open reduction requires surgery to expose the fracture and reset the bone. While some fractures can be minor, others are quite severe and result in grave complications. For example, a fractured diaphysis of the femur has the potential to release fat globules into the bloodstream. These can become lodged in the capillary beds of the lungs, leading to respiratory distress and, if not treated quickly, death.

Bone Repair

When a bone breaks, blood flows from any vessel torn by the fracture. These vessels could be in the periosteum, osteons, and medullary cavity. The blood begins to clot, and about six to eight hours after the fracture, the clotting blood has formed a fracture hematoma (Figure 6.13a). The disruption of blood flow to the bone results in the death of bone cells around the fracture.

Within about 48 hours after the fracture, chondrocytes from the endosteum have created an internal callus (plural = calli) by secreting a fibrocartilaginous matrix between the two ends of the broken bone, while the periosteal chondrocytes and osteoblasts create an external callus of hyaline cartilage and bone, respectively, around the outside of the break (Figure 6.13b). This stabilizes the fracture.

Over the next several weeks, osteoclasts resorb the dead bone; osteogenic cells become active, divide, and differentiate into osteoblasts. The cartilage in the calli is replaced by trabecular bone via endochondral ossification (Figure 6.13c).

Eventually, the internal and external calli unite, compact bone replaces spongy bone at the outer margins of the fracture, and healing is complete. A slight swelling may remain on the outer surface of the bone, but quite often, that region undergoes remodelling (Figure 6.13d), and no external evidence of the fracture remains.

Figure 6.13 is a four-part diagram showing the progression of bone repair. First, a hematoma forms around the break, which becomes a callus in which new blood vessels form. Spongy bone trabecula develops around the vessels to form a bony callus joining the broken parts together to heal the fracture. Refer to the extended description for more details.

Figure 6.13  Stages in Fracture Repair. The healing of a bone fracture follows a series of progressive steps: (a) A fracture hematoma forms. (b) Internal and external calli form. (c) Cartilage of the calli is replaced by trabecular bone. (d) Remodelling occurs.

Extended description

Interactive Link 6.3

Watch this video (http://oer.aupress.ca/oer-202505/6.3) to review different types of fractures.

6.6 Nutrition, Hormones, and Bone Tissue

Learning Objectives

By the end of this section, you will be able to:

  • • List the nutrients that affect bone health
  • • Discuss the roles those nutrients play in bone health
  • • Describe the effects of hormones on bone tissue

All the organ systems of your body are interdependent, and the skeletal system is no exception. The food you take in via your digestive system and the hormones secreted by your endocrine system affect your bones. Even using your muscles to engage in exercise has an impact on your bones.

Nutrition and Bone Tissue

The vitamins and minerals contained in all the food we consume are important for all our organ systems. However, there are certain nutrients that affect bone health.

Calcium and Vitamin D

You already know that calcium is a critical component of bone, especially in the form of calcium phosphate and calcium carbonate. Since the body cannot make calcium, it must be obtained from the diet. However, calcium cannot be absorbed from the small intestine without vitamin D. Therefore, intake of vitamin D is also critical to bone health. In addition to vitamin D’s role in calcium absorption, it also plays a role, though not as clearly understood, in bone remodelling.

Figure 6.14 is a diagram of synthesis of vitamin D in the human body. Vitamin D is either ingested or manufactured in the skin after the absorption of sunlight. The liver and kidney transform this into a more bioavailable form of the vitamin for circulation through the body. Refer to the extended description for more details.

Figure 6.14  Synthesis of Vitamin D. Sunlight is one source of vitamin D.

Extended description

Other Nutrients

Vitamin K also supports bone mineralization and may have a synergistic role with vitamin D in the regulation of bone growth. Green leafy vegetables are a good source of vitamin K.

The minerals magnesium and fluoride may also play a role in supporting bone health.

Omega-3 fatty acids have long been known to reduce inflammation in various parts of the body. Inflammation can interfere with the function of osteoblasts, so consuming omega-3 fatty acids, in the diet or in supplements, may also help enhance production of new osseous tissue. Table 6.4 summarizes the role of nutrients in bone health.

Table 6.4 Nutrients and Bone Health

Nutrient

Role in bone health

Calcium

Needed to make calcium phosphate and calcium carbonate, which form the hydroxyapatite crystals that give bone its hardness

Vitamin D

Needed for calcium absorption

Vitamin K

Supports bone mineralization; may have synergistic effect with vitamin D

Magnesium

Structural component of bone

Fluoride

Structural component of bone

Omega-3 fatty acids

Reduces inflammation that may interfere with osteoblast function

Hormones and Bone Tissue

The endocrine system produces and secretes hormones, many of which interact with the skeletal system. These hormones are involved in controlling bone growth, maintaining bone once it is formed, and remodelling it.

Hormones That Influence Osteoblasts and/or Maintain the Matrix

Several hormones are necessary for controlling bone growth and maintaining the bone matrix. The pituitary gland secretes growth hormone (GH), which, as its name implies, controls bone growth in several ways. It triggers chondrocyte proliferation in epiphyseal plates, resulting in the increasing length of long bones. GH also increases calcium retention, which enhances mineralization, and stimulates osteoblastic activity, which improves bone density.

Thyroxine, a hormone secreted by the thyroid gland, promotes osteoblastic activity and the synthesis of bone matrix.

During puberty, the sex hormones (estrogen and testosterone) also come into play. They too promote osteoblastic activity and production of bone matrix, and they are responsible for the growth spurt that often occurs during adolescence. They also promote the conversion of the epiphyseal plate to the epiphyseal line (i.e., cartilage to its bony remnant), thus bringing an end to the longitudinal growth of bones.

Calcitriol, the active form of vitamin D, is produced by the kidneys and stimulates the absorption of calcium and phosphate from the digestive tract.

Hormones That Influence Osteoclasts

Bone modelling and remodelling require osteoclasts to resorb unneeded, damaged, or old bone and osteoblasts to lay down new bone. Two hormones that affect the osteoclasts are parathyroid hormone (PTH) and calcitonin.

PTH stimulates osteoclast proliferation and activity. As a result, calcium is released from the bones into the circulation, thus increasing the calcium ion concentration in the blood. PTH also promotes the reabsorption of calcium by the kidney tubules, which can affect calcium homeostasis (see 6.7 Calcium Homeostasis).

The small intestine is also affected by PTH, albeit indirectly. Because another function of PTH is to stimulate the synthesis of vitamin D, and because vitamin D promotes intestinal absorption of calcium, PTH indirectly increases calcium uptake by the small intestine. Calcitonin, a hormone secreted by the thyroid gland, has some effects that counteract those of PTH.

Calcitonin inhibits osteoclast activity and stimulates calcium uptake by the bones, thus reducing the concentration of calcium ions in the blood. As evidenced by their opposing functions in maintaining calcium homeostasis, PTH and calcitonin are generally not secreted at the same time. Table 6.5 summarizes the hormones that influence the skeletal system.

6.7 Calcium Homeostasis: Interactions of the Skeletal System and Other Organ Systems

Learning Objectives

By the end of this section, you will be able to:

  • • Describe the effect of too much or too little calcium on the body
  • • Explain the process of calcium homeostasis

Table 6.5 Hormones That Affect the Skeletal System

Hormone

Role

Growth hormone

Increases length of long bones, enhances mineralization, and improves bone density

Thyroxine

Stimulates bone growth and promotes synthesis of bone matrix

Sex hormones

Promote osteoblastic activity and production of bone matrix; responsible for adolescent growth spurt; promote conversion of epiphyseal plate to epiphyseal line

Calcitriol

Stimulates absorption of calcium and phosphate from digestive tract

Parathyroid hormone

Stimulates osteoclast proliferation and resorption of bone by osteoclasts; promotes reabsorption of calcium by kidney tubules; indirectly increases calcium absorption by small intestine

Calcitonin

Inhibits osteoclast activity and stimulates calcium uptake by bones

Calcium is not only the most abundant mineral in bone; it is also the most abundant mineral in the human body. Calcium ions are needed not only for bone mineralization but for tooth health, regulation of the heart rate and strength of contraction, blood coagulation, contraction of smooth and skeletal muscle cells, and regulation of nerve impulse conduction. The normal level of calcium in the blood is about 10 mg/dL (milligrams per decilitre). When the body cannot maintain this level, a person will experience hypo- or hypercalcemia.

Hypocalcemia, a condition characterized by abnormally low levels of calcium, can have adverse effects on a number of different body systems, including circulation, muscles, nerves, and bone. Without adequate calcium, blood has difficulty coagulating, the heart may skip beats or stop beating altogether, muscles may have difficulty contracting, nerves may have difficulty functioning, and bones may become brittle. The causes of hypocalcemia can range from hormonal imbalances to an improper diet. Treatments vary according to the cause, but prognoses are generally good.

Conversely, in hypercalcemia, a condition characterized by abnormally high levels of calcium, the nervous system is underactive, which results in lethargy, sluggish reflexes, constipation and loss of appetite, confusion, and in severe cases, coma.

Calcium homeostasis is critical. The skeletal, endocrine, and digestive systems play a role in this, but the kidneys do, too. These body systems work together to maintain a normal calcium level in the blood.

Calcium is a chemical element that cannot be produced by any biological processes. The only way it can enter the body is through the diet. The bones act as a storage site for calcium: The body deposits calcium in the bones when blood levels get too high, and it releases calcium when blood levels drop too low. This process is regulated by PTH, vitamin D, and calcitonin.

Cells of the parathyroid gland have plasma membrane receptors for calcium. When calcium is not binding to these receptors, the cells release PTH, which stimulates osteoclast proliferation and resorption of bone by osteoclasts. This demineralization process releases calcium into the blood. PTH promotes reabsorption of calcium from the urine by the kidneys, so that the calcium returns to the blood. Finally, PTH stimulates the synthesis of vitamin D, which in turn stimulates calcium absorption from any digested food in the small intestine.

When all these processes return blood calcium levels to normal, there is enough calcium to bind with the receptors on the surface of the cells of the parathyroid glands, and this cycle of events is turned off.

When blood levels of calcium get too high, the thyroid gland is stimulated to release calcitonin, which inhibits osteoclast activity and stimulates calcium uptake by the bones but also decreases reabsorption of calcium by the kidneys. All these actions lower blood levels of calcium. When blood calcium levels return to normal, the thyroid gland stops secreting calcitonin.

Key Terms

articular cartilage:
Thin layer of cartilage covering an epiphysis; reduces friction and acts as a shock absorber.
articulation:
Where two bone surfaces meet.
bone (osseous tissue):
Hard, dense connective tissue that forms the structural elements of the skeleton.
canaliculi (singular = canaliculus):
Channels within the bone matrix that house one of an osteocyte’s many cytoplasmic extensions that it uses to communicate and receive nutrients.
cartilage:
Semirigid connective tissue found on the skeleton in areas where flexibility and smooth surfaces support movement.
central canal (Haversian canal):
Longitudinal channel in the centre of each osteon; contains blood vessels, nerves, and lymphatic vessels.
closed reduction:
Manual manipulation of a broken bone to set it into its natural position without surgery.
compact bone:
Dense osseous tissue that can withstand compressive forces.
diaphysis:
Tubular shaft that runs between the proximal and distal ends of a long bone.
endochondral ossification:
Process in which bone forms by replacing hyaline cartilage.
endosteum:
Delicate membranous lining of a bone’s medullary cavity.
epiphyseal line:
Completely ossified remnant of the epiphyseal plate.
epiphyseal plate (also growth plate):
Sheet of hyaline cartilage in the metaphysis of an immature bone; replaced by bone tissue as the organ grows in length.
epiphysis:
Wide section at each end of a long bone; filled with spongy bone and red marrow.
external callus:
Collar of hyaline cartilage and bone that forms around the outside of a fracture.
flat bone:
Thin and curved bone; serves as a point of attachment for muscles and protects internal organs.
fracture:
Broken bone.
fracture hematoma:
Blood clot that forms at the site of a broken bone.
hematopoiesis:
Production of blood cells, which occurs in the red marrow of the bones.
hole:
Opening or depression in a bone.
hypercalcemia:
Condition characterized by abnormally high levels of calcium.
hypocalcemia:
Condition characterized by abnormally low levels of calcium.
internal callus:
Fibrocartilaginous matrix, in the endosteal region, between the two ends of a broken bone.
intramembranous ossification:
Process by which bone forms directly from mesenchymal tissue.
irregular bone:
Bone of complex shape; protects internal organs from compressive forces.
lacunae (singular = lacuna):
Spaces in a bone that house an osteocyte.
lamellae:
Concentric rings of calcified matrix in the centre of each osteon.
long bone:
Cylinder-shaped bone that is longer than it is wide; functions as a lever.
medullary cavity:
Hollow region of the diaphysis; filled with yellow marrow.
modelling:
Process, during bone growth, by which bone is resorbed on one surface of a bone and deposited on another.
nutrient foramen:
Small opening in the middle of the external surface of the diaphysis, through which an artery enters the bone to provide nourishment.
open reduction:
Surgical exposure of a bone to reset a fracture.
ossification (also osteogenesis):
Bone formation.
ossification centre:
Cluster of osteoblasts found in the early stages of intramembranous ossification.
osteoblast:
Cell responsible for forming new bone.
osteoclast:
Cell responsible for resorbing bone.
osteocyte:
Primary cell in mature bone; responsible for maintaining the matrix.
osteogenic cell:
Undifferentiated cell with high mitotic activity; the only bone cells that divide; they differentiate and develop into osteoblasts.
osteoid:
Uncalcified bone matrix secreted by osteoblasts.
osteon (also Haversian system):
Basic structural unit of compact bone; made of concentric layers of calcified matrix.
perforating canal (also Volkmann’s canal):
Channel that branches off from the central canal and houses vessels and nerves that extend to the periosteum and endosteum.
perichondrium:
Membrane that covers cartilage.
periosteum:
Fibrous membrane covering the outer surface of bone and continuous with ligaments.
primary ossification centre:
Region, deep in the periosteal collar, where bone development starts during endochondral ossification.
projection:
Bone markings where part of the surface sticks out above the rest of the surface, where tendons and ligaments attach.
red marrow:
Connective tissue in the interior cavity of a bone where hematopoiesis takes place.
remodelling:
Process by which osteoclasts resorb old or damaged bone at the same time as and on the same surface where osteoblasts form new bone to replace that which is resorbed.
secondary ossification centre:
Region of bone development in the epiphyses.
sesamoid bone:
Small, round bone embedded in a tendon; protects the tendon from compressive forces.
short bone:
Cube-shaped bone that is approximately equal in length, width, and thickness; provides limited motion.
skeletal system:
Organ system composed of bones and cartilage that provides for movement, support, and protection.
spongy bone (also cancellous bone):
Trabeculated osseous tissue that supports shifts in weight distribution.
trabeculae (singular = trabecula):
Spikes or sections of the latticelike matrix in spongy bone.
yellow marrow:
Connective tissue in the interior cavity of a bone where fat is stored.

Chapter Review

6.1 The Functions of the Skeletal System

The major functions of the bones are body support, facilitation of movement, protection of internal organs, storage of minerals and fat, and hematopoiesis. Together, the muscular system and skeletal system are known as the musculoskeletal system.

6.2 Bone Classification

Bones can be classified according to their shapes. Long bones, such as the femur, are longer than they are wide. Short bones, such as the carpals, are approximately equal in length, width, and thickness. Flat bones are thin, but are often curved, such as the ribs. Irregular bones such as those of the face have no characteristic shape. Sesamoid bones, such as the patellae, are small, round, and located in tendons.

6.3 Bone Structure

A hollow medullary cavity filled with yellow marrow runs the length of the diaphysis of a long bone. The walls of the diaphysis are compact bone. The epiphyses, which are wider sections at each end of a long bone, are filled with spongy bone and red marrow. The epiphyseal plate, a layer of hyaline cartilage, is replaced by osseous tissue as the organ grows in length. The medullary cavity has a delicate membranous lining called the endosteum. The outer surface of bone, except in regions covered with articular cartilage, is covered with a fibrous membrane called the periosteum. Flat bones consist of two layers of compact bone surrounding a layer of spongy bone. Bone markings depend on the function and location of bones. Articulations are places where two bones meet. Projections stick out from the surface of the bone and provide attachment points for tendons and ligaments. Holes are openings or depressions in the bones.

Bone matrix consists of collagen fibres and organic ground substance, primarily hydroxyapatite formed from calcium salts. Osteogenic cells develop into osteoblasts. Osteoblasts are cells that make new bone. They become osteocytes, the cells of mature bone, when they get trapped in the matrix. Osteoclasts engage in bone resorption. Compact bone is dense and composed of osteons, while spongy bone is less dense and made up of trabeculae. Blood vessels and nerves enter the bone through the nutrient foramina to nourish and innervate bones.

6.4 Bone Formation and Development

All bone formation is a replacement process. Embryos develop a cartilaginous skeleton and various membranes. During development, these are replaced by bone through the ossification process. In intramembranous ossification, bone develops directly from sheets of mesenchymal connective tissue. In endochondral ossification, bone develops by replacing hyaline cartilage. Activity in the epiphyseal plate enables bones to grow in length. Modelling allows bones to grow in diameter. Remodelling occurs as bone is resorbed and replaced by new bone. Osteogenesis imperfecta is a genetic disease in which collagen production is altered, resulting in fragile, brittle bones.

6.5 Fractures: Bone Repair

Fractured bones may be repaired by closed reduction or open reduction. Healing of fractures begins with the formation of a hematoma, followed by internal and external calli. Osteoclasts resorb dead bone, while osteoblasts create new bone that replaces the cartilage in the calli. The calli eventually unite, remodelling occurs, and healing is complete.

6.6 Nutrition, Hormones, and Bone Tissue

Mechanical stress stimulates the deposition of mineral salts and collagen fibres within bones. Calcium, the predominant mineral in bone, cannot be absorbed from the small intestine if vitamin D is lacking. Vitamin K supports bone mineralization and may have a synergistic role with vitamin D. Magnesium and fluoride, as structural elements, play a supporting role in bone health. Omega-3 fatty acids reduce inflammation and may promote production of new osseous tissue. Growth hormone increases the length of long bones, enhances mineralization, and improves bone density. Thyroxine stimulates bone growth and promotes the synthesis of bone matrix. The sex hormones (estrogen and testosterone) promote osteoblastic activity and the production of bone matrix, are responsible for the adolescent growth spurt, and promote closure of the epiphyseal plates. Parathyroid hormone (PTH) stimulates osteoclast proliferation and resorption of bone by osteoclasts. Vitamin D plays a synergistic role with PTH in stimulating the osteoclasts. Additional functions of PTH include promoting reabsorption of calcium by kidney tubules and indirectly increasing calcium absorption from the small intestine. Calcitonin inhibits osteoclast activity and stimulates calcium uptake by bones.

6.7 Calcium Homeostasis: Interactions of the Skeletal System and Other Organ Systems

Calcium is the most abundant mineral in the human body and is essential for bone and tooth health, muscle contraction, heart regulation, nerve transmission, and blood clotting. Normal blood calcium levels are about 10 mg/dL. Low calcium levels (hypocalcemia) can cause problems with circulation, muscle and nerve function, and bone strength, leading to symptoms such as irregular heartbeat, poor muscle contraction, and brittle bones. It can result from hormonal issues or dietary deficiencies but is usually treatable. High calcium levels (hypercalcemia) depress nervous system activity, causing fatigue, constipation, confusion, and potentially coma. Calcium balance, or homeostasis, involves the skeletal, endocrine, digestive, and renal systems. Calcium enters the body only through diet, and bones store excess calcium or release it when needed. Parathyroid hormone (PTH), vitamin D, and calcitonin regulate this balance: PTH raises calcium levels by stimulating bone resorption, kidney reabsorption, and intestinal absorption, while calcitonin lowers calcium levels by inhibiting bone breakdown and increasing kidney excretion. These feedback mechanisms maintain calcium within a narrow, healthy range essential for proper physiological function.

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