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Updated: Feb 19 2026

Articular Cartilage

Images
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  • forms of cartilage
    • Articular cartilage is one of five forms of cartilage
      • hyaline or articular cartilage
      • fibroelastic cartilage (meniscus)
      • fibrocartilage (at tendon and ligament insertion into bone)
      • elastic cartilage (trachea)
      • physeal cartilage (growth plate)
  • Layers of Articular Cartilage
    • Normal articular cartilage is composed of three zones and the tidemark
      • zones based on the shape of the chondrocytes and the orientation of the type II collagen.
      • Zones of Articular Cartilage
      • (tangential zone)
      • Type II collagen orientation is parallel to joint
      • Has flattened chondrocytes, condensed collagen fibers, and sparse proteoglycans
      • Has the highest concentration of collagen and lowest concentration of proteoglycans
      • Only zone where articular cartilage progenitor cells have been found
      • Intermediate zone
      • Type II collagen has an oblique or random organization
      • Is the thickest layer with round chondrocytes, and abundant proteoglycan content
      • Deep layer
      • (basal layer)
      • Type II collagen is perpendicular to joint and crosses tidemark
      • Has the highest concentration of proteoglycans
      • Round chondrocytes arranged in columns
      • Tidemark
      • Is deep to the basal layer and separates the true articular cartilage from the deeper cartilage that is a remnant of the cartilage anlage, which participated in endochondral ossification during longitudinal growth in childhood.
      • The tidemark divides
      •      - the superficial, uncalcified cartilage from the deeper, calcified cartilage
      •      - division between nutritional sources for the chondrocytes
      • The tidemark is found only in joints
      • Most prominently in the adult and nongrowing joint
      • Subchondral Bone
  • Growth Factors
    • PDGF
      • thought to be involved with healing of articular cartilage lacerations
      • effects extrapolated from PRP (which contains it)
      • no adverse effects in normal joints
    • TGF-B
      • stimulates proteoglycan and ECM synthesis
      • decreases catabolic activity of IL-1 and MMPs
      • causes synovial proliferation and fibrosis
      • induces osteophyte formation
    • b-FGF (Basic Fibroblastic Growth Factor)
      • stimulates DNA synthesis in articular chondrocytes
    • IGF-1 (Insulin growth factor -1)
      • stimulates DNA and cartilage matrix synthesis in adult articular cartilage
      • stimulates ECM synthesis
      • decreaes synovial thickening and chronic synovial inflammation
      • additive when combined with TGF-b
  • Nourishment and Metabolism
    • Cartilage is avascular
    • Nourished by
      • synovial fluid at the surface
      • subchondral bone at the base
    • Relies on glycolysis for ATP production
  • Mechanical Stress Response
    • Physiologic stress stimulates matrix synthesis and inhibits chondrolysis
      • cyclic stress (1-5 MPa)
      • moderate frequency (0.1-1 Hz)
      • low rates (<1000 MPa/s)
    • Excess stress suppresses matrix synthesis and promotes chondrolysis
      • excess stress (>5 MPa)
      • static load (<0.01 Hz)
      • high rates (>1000 MPa/s)
    • Cellular responses
      • primary cilia act as a mechanosensory organ on chondrocytes and osteoblasts
      • transduction of mechanical signals involves integrins
    • Repetitive loading
      • moderate running increases cartilage thickness and proteoglycan content
      • strenuous loading leads to cartilage thinning and proteoglycan loss
      • immobilization leads to cartilage thinning, softening and proteoglycan loss
  • Aging in Articular Cartilage
    • Advanced glycosylation end-products (AGEs)
      • from spontaneous nonenzymatic glycation of proteins when sugars (glucose, fructose, ribose) react with lysine or arginine residues
      • because of the low turnover, articular cartilage is susceptible to AGEs accumulation.
      • accumulation of AGEs has been thought to play a role in the development of OA of the knee and ankle.
      • Aging vs. Osteoarthritis effect on Articular Cartilage
      • Aging
      • Osteoarthritis
      • Water
      • Decreased
      • Modulus/stiffness
      • Increased (less elastic)
      • Decreased (more elastic)
      • Chondrocytes
      • Fewer but increased size
      • Cells cluster (late stage)
      • Glycosaminoglycans
      • Increased keratan sulfate:chondroitin 4 sulfate ratio, constant chondroitin 6 sulfate
      • Increased chondroitin 4 sulfate:keratan sulfate ratio
      • Proteoglycans
      • Increased decorin, decreased proteoglycan size
      • Proteoglycans unbound from hyaluronate
      • Collagen
      • Increased collagen crosslinking/brittleness
      • Collagen disorganized (increased collagenase)
      • Advanced Glycosylation End products (AGE)
      • Increased
      • Accumulation of AGE thought to lead to OA knee and ankle
    • Injury
      • Following an intra-articular fracture, in addition to mechanical disruption and cartilage necrosis, the following inflammatory cytokines are released, contributing to articular damage and the eventual development of post-traumatic arthritis:IL-1β, TNF-α, nitric oxide, matrix metalloproteinases, aggrecans, and damage associated molecular patterns.
  • Healing in Articular Cartilage
    • Deep lacerations (through tidemark)
      • leads to fibrocartilage healing
      • occurs when laceration travels through tidemark and penetrates subchondral bone
      • fibrocartilage produced by undifferentiated marrow mesenchymal stem cells
      • a healing response is initiated with hematoma, stem cell migration, and vascular ingrowth.
      • This response produces type I collagen and resultant fibrocartilage rather than desired hyaline cartilage as produced by chondrocytes.
      • This repair cartilage has diminished resiliency, stiffness, poor wear characteristics, and the predilection for arthritis.
    • Superficial laceration (not through tidemark)
      • leads to chondrocytes proliferation but no healing takes place because of avascular nature of cartilage
  • Clinical Conditions
    • Articular Defects of the Knee (Adults)
    • Osteocondritis dissecans
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Question
1 of 38
Basic Science | Articular Cartilage (ft. Dr. Felix H. "Buddy" Savoie III)
  • Basic Science
  • - Articular Cartilage
13:59 min
10/18/2019
282 plays
4.5
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(2)
Basic Science | Articular Cartilage
  • Basic Science
  • - Articular Cartilage
27:16 min
11/8/2019
568 plays
4.0
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(6)
Question Session | Articular Cartilage, Elbow Arthritis & THA Revision
  • Basic Science
  • - Articular Cartilage
40:26 min
11/11/2019
102 plays
5.0
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(2)
Private Note