Skip to content

Human Anatomy · General anatomy

Cartilage

Cartilage has no blood supply, no nerves and no lymphatics. Every difficult thing about it — why it is silent until it is badly damaged, why it heals so poorly, why movement is its only source of nutrition — follows from those three absences.

8Sections
3Diagrams
2Illustrations
5Tables
10Questions

What you will be able to do

  • Describe what cartilage is made of and why its matrix behaves as it does under load.
  • Explain how the absence of vessels, nerves and lymphatics shapes everything cartilage does.
  • Say why cartilage heals poorly, and what happens differently when a defect reaches bone.
  • Explain how articular cartilage is nourished, and use it to justify early movement.
  • Distinguish hyaline, elastic and fibrocartilage by matrix, location and mechanical job.
  • Describe the zones of articular cartilage and why the fibre direction changes with depth.
  • Compare interstitial and appositional growth.
  • Outline what happens as articular cartilage wears, and explain why pain arrives late.

A tissue built on three absences

Cartilage is a firm connective tissue made of cells called chondrocytes sitting in small spaces called lacunae, surrounded by a matrix they produce themselves. The matrix is what gives cartilage its properties: a mesh of collagen holding a gel that is extremely good at trapping water.

That trapped water is the secret. Press on cartilage and water is squeezed out slowly; release the pressure and it draws back in. This is why cartilage can take repeated load without cracking, and why it feels firm but slightly yielding.

The three absences, and what each one costs

No blood vessels. Nutrients must diffuse in from the surface, so delivery is slow and repair is slower.

No nerves. Cartilage itself cannot hurt. Pain from a worn joint comes from the bone, capsule and synovium around it — which is why damage can be advanced before a patient notices.

No lymphatics. Cartilage clears waste and handles swelling poorly compared with tissue that has drainage.

Why cartilage heals badly

Figure 1 · Why cartilage heals badly

Why cartilage heals badly A comparison showing blood vessels reaching cells in most tissue, against cartilage where nutrients must diffuse in from the surface. MOST TISSUE CARTILAGE Vessels run right up to the cells. Repair cells and nutrients arrive quickly. No vessels inside. Everything diffuses in. Slow to feed, slower still to repair.
No vessels means no delivery. In most tissue, repair cells arrive in the blood. In cartilage everything has to diffuse in from the surface, and the cells inside cannot travel.

In almost every other tissue, injury brings a rush of blood carrying inflammatory cells, growth factors and the cells that build repair tissue. In cartilage none of that arrives, because there is nothing to carry it.

Chondrocytes are also comparatively few, they sit trapped in their lacunae, and they do not migrate. A cell a millimetre from a defect cannot travel to it. The result is that damage confined to cartilage often does not heal at all, and where repair does occur the tissue laid down is usually fibrocartilage rather than the original hyaline — mechanically inferior, and it wears faster.

The exception that proves it

A defect that penetrates through the cartilage and into the underlying bone does bleed, and it does produce repair tissue — because it has reached a blood supply. Some surgical techniques work by deliberately drilling into the bone for exactly this reason. The repair is fibrocartilage, not hyaline, but it is better than nothing.

How cartilage is fed

If there are no vessels, nutrition must arrive another way, and it does so by two routes.

Cartilage covered by a perichondrium — a fibrous sheath with its own vessels — is fed by diffusion from it. Most cartilage in the body has one.

Articular cartilage does not. The surface facing the joint is bare, and it is fed from the synovial fluid. Getting nutrients through that fluid and into the tissue depends on the joint being loaded and unloaded: compression squeezes fluid out, release draws it back in with fresh nutrients. Cartilage is nourished by being used.

Why this matters at the bedside

A joint that is never moved is a joint whose cartilage is not being fed. Prolonged immobilisation causes cartilage to thin and soften. This is one of the strongest anatomical arguments for early, controlled movement after injury or surgery — and one you can explain to a patient in a sentence.

The three types

Figure 2 · The three types compared

The three types of cartilage compared Three columns comparing hyaline, elastic and fibrocartilage by matrix, location and mechanical job. Hyaline cartilage MATRIX Fine collagen, glassy matrix FOUND IN Joint surfaces, costal cartilage, nose, trachea, growth plates GOOD AT Smooth, low-friction, spreads load Elastic cartilage MATRIX Elastic fibres through the matrix FOUND IN External ear, epiglottis, auditory tube GOOD AT Springs back to shape after bending Fibro cartilage MATRIX Thick parallel collagen bundles FOUND IN Menisci, intervertebral discs, pubic symphysis, tendon insertions GOOD AT Takes tension and compression together
Match the type to the job, not the location. If you know what each is good at, you can predict where it will be found.

Figure 3 · The three types of cartilage under the microscope

Illustration to be added

Three histology panels side by side at matched magnification. Hyaline: chondrocytes in lacunae, often in isogenous groups, within a smooth glassy matrix; perichondrium at one edge. Elastic: the same cell arrangement but with a dense dark network of elastic fibres throughout the matrix. Fibrocartilage: thick parallel collagen bundles with chondrocytes lying in rows between them, no perichondrium. Beneath each panel, a small body silhouette marking where that type is found. Realistic histology style, labelled with gold leader lines.

HyalineElasticFibrocartilage
Matrix Fine collagen, not visible under an ordinary microscope; glassy appearance Collagen plus a dense network of elastic fibres Thick, parallel bundles of collagen; clearly visible
Chondrocytes In lacunae, often in small clusters In lacunae, numerous In rows between the collagen bundles
Perichondrium Present, except on joint surfaces Present Absent
Where Joint surfaces, costal cartilages, nose, larynx, trachea, bronchi, growth plates, the fetal skeleton External ear, epiglottis, auditory tube, parts of the larynx Intervertebral discs, menisci of the knee, pubic symphysis, glenoid and acetabular labra, some tendon and ligament insertions
Good at Smooth low-friction movement; spreading load Returning to shape after being bent Taking tension and compression at once; absorbing shock
Weak at Repair. Wears under repeated shear. Bearing heavy load Providing a smooth gliding surface

A pattern is worth noticing here. Fibrocartilage turns up wherever a joint has to combine movement with heavy load — between vertebrae, inside the knee, at the pubic symphysis, deepening the shoulder and hip sockets. Whenever you meet it, ask what forces that site is managing, and the answer is usually compression and tension together.

Articular cartilage in detail

This is the type you will spend your career thinking about, so it earns its own section.

It is hyaline cartilage, a few millimetres thick, covering the ends of bones inside a synovial joint. Its surface is extraordinarily smooth — a healthy joint has less friction than ice sliding on ice — and it spreads load from the joint over a wide area of bone beneath.

Figure 4 · The zones of articular cartilage

Illustration to be added

A vertical section through articular cartilage on the end of a bone, showing four zones with collagen fibre direction drawn in each: superficial zone with fibres parallel to the surface and flattened chondrocytes; middle zone with oblique arcading fibres and rounded cells; deep zone with fibres perpendicular to the surface and cells in columns; calcified zone below the tidemark, anchoring into subchondral bone. Mark the tidemark and the subchondral bone plate. Include a small companion panel showing the same section with fibrillation and thinning, for comparison. Cartilage pale blue, bone warm ivory, collagen fibres as fine navy lines.

ZoneCollagen fibres runWhat it does
SuperficialParallel to the surface Resists shear as the surfaces slide; the smooth gliding layer
MiddleObliquely, in arcades Absorbs compression
DeepPerpendicular to the surface Resists compression and anchors the tissue downwards
CalcifiedAnchoring into bone Binds cartilage to the bone beneath, across the tidemark

The changing fibre direction is not decoration. It means the tissue is built to handle a different kind of force at each depth — shear at the top where surfaces slide, compression deeper down where load passes into bone.

How cartilage grows

Interstitial growth

From within. Chondrocytes already in the matrix divide and lay down more matrix around themselves, so the tissue expands from the inside. This is how cartilage grows in young people and how the growth plate lengthens a bone.

Appositional growth

From the surface. Cells in the inner layer of the perichondrium become chondrocytes and add new cartilage to the outside, so the tissue thickens. This is the only route available where a perichondrium exists.

Both slow markedly with age. Adult cartilage has limited capacity to grow at all, which is part of why the tissue does not simply replace itself when worn.

What happens when it wears

You will meet worn cartilage constantly, so it is worth understanding the sequence rather than only the diagnosis.

StageWhat is happeningWhat the patient notices
Early matrix change Water content rises and the collagen mesh loosens. The surface softens. Often nothing at all. Cartilage has no nerves.
Surface fibrillation The smooth surface frays and splits vertically. Perhaps stiffness after rest; perhaps still nothing.
Thinning and loss Cartilage is lost down towards bone. Load concentrates on a smaller area. Pain on loading, stiffness, reduced range.
Bone involvement Exposed bone thickens, cysts form, osteophytes grow at the margins. Pain at rest and at night, deformity, marked loss of function.

Two things this explains

Why the pain arrives late. The cartilage is not what hurts. Symptoms begin when the bone, capsule and synovium beneath and around it become involved — which is well after the cartilage itself has changed.

Why what you see on a scan may not match how the patient feels. Structural change and symptoms come from different tissues, so they do not run in step. Treat the person in front of you, not the report.

Where students get this wrong

Saying "the cartilage is painful"

It has no nerve supply and cannot generate pain. Name the structure that actually hurts: subchondral bone, capsule, synovium, or the surrounding soft tissue.

Assuming rest protects a joint

Articular cartilage is fed by the loading and unloading cycle. Complete rest starves it. Controlled movement is protective; immobility is not.

Confusing the three types by location alone

Learn what each is good at and the locations follow. Fibrocartilage appears where compression and tension arrive together; elastic cartilage where something must spring back; hyaline where surfaces must glide.

Expecting cartilage to heal like other tissue

Without vessels there is no inflammatory phase, and without migration there are no cells arriving to rebuild. Repair that does occur is usually fibrocartilage, and it is not as good as what was lost.

Forgetting the meniscus has two zones

The outer third of a meniscus has a blood supply and can heal; the inner two thirds do not. This is why some meniscal tears are repaired and others are trimmed, and it is a favourite examination question.

Check yourself

Ten questions on this chapter. Tap one to see the answer and the reasoning.

Q1. Cartilage cannot generate pain because it has no:
  1. (A) Blood supply
  2. (B) Nerve supply
  3. (C) Lymphatic drainage
  4. (D) Chondrocytes

Answer: (B) No nerve supply. Pain from a worn joint arises in the subchondral bone, capsule and synovium, which is why cartilage damage can be advanced before symptoms begin.

Q2. Articular cartilage receives its nutrition from:
  1. (A) The perichondrium covering it
  2. (B) Vessels in the subchondral bone only
  3. (C) Synovial fluid, driven in and out by loading
  4. (D) Lymphatic vessels in the capsule

Answer: (C) It has no perichondrium. Nutrients come from synovial fluid, and the pumping action of loading and unloading is what drives exchange.

Q3. Which cartilage type is found in the intervertebral disc, the menisci and the pubic symphysis?
  1. (A) Hyaline
  2. (B) Elastic
  3. (C) Fibrocartilage
  4. (D) Calcified cartilage

Answer: (C) Fibrocartilage. It appears wherever a site must take compression and tension together.

Q4. A cartilage defect that penetrates into subchondral bone differs from a superficial one because:
  1. (A) It is more painful immediately
  2. (B) It reaches a blood supply and produces repair tissue
  3. (C) It heals with normal hyaline cartilage
  4. (D) It cannot be seen on imaging

Answer: (B) Reaching bone means reaching blood, so an inflammatory and repair response occurs. The tissue formed is fibrocartilage rather than hyaline.

Q5. In the superficial zone of articular cartilage, the collagen fibres run:
  1. (A) Perpendicular to the surface
  2. (B) Parallel to the surface
  3. (C) In random orientation
  4. (D) In vertical columns

Answer: (B) Parallel to the surface, which resists the shear generated as the joint surfaces slide over one another.

Q6. Growth of cartilage from within, by division of chondrocytes already in the matrix, is:
  1. (A) Appositional growth
  2. (B) Interstitial growth
  3. (C) Endochondral growth
  4. (D) Fibrous growth

Answer: (B) Interstitial growth. Appositional growth adds new cartilage at the surface from the perichondrium.

Q7. Which structure has NO perichondrium?
  1. (A) Costal cartilage
  2. (B) The cartilage of the external ear
  3. (C) Articular cartilage
  4. (D) Tracheal cartilage

Answer: (C) Articular cartilage. Its free surface faces the joint cavity, which is why it depends on synovial fluid for nutrition.

Q8. Prolonged immobilisation of a joint causes articular cartilage to:
  1. (A) Thicken and strengthen
  2. (B) Remain unchanged
  3. (C) Thin and soften
  4. (D) Convert to fibrocartilage

Answer: (C) Thin and soften. Loading and unloading drive nutrient exchange, so a joint that is not moved is a joint whose cartilage is not being fed.

Q9. A tear in the outer third of a meniscus may be repaired rather than trimmed because:
  1. (A) It is easier to reach surgically
  2. (B) That zone has a blood supply
  3. (C) That zone contains hyaline cartilage
  4. (D) Tears there are always small

Answer: (B) The outer third is vascularised and can heal. The inner two thirds are avascular, so tears there are usually trimmed instead.

Q10. Which sequence correctly describes cartilage wear?
  1. (A) Bone changes, then cartilage thinning, then pain
  2. (B) Matrix change, surface fibrillation, thinning, then bone involvement
  3. (C) Pain, then fibrillation, then matrix change
  4. (D) Osteophyte formation, then cartilage loss

Answer: (B) Matrix softening comes first, then the surface frays, then the tissue thins, and only then does the bone become involved. Symptoms usually begin at that last stage.

Quick review

Everything on this page, in one screen

  • Cartilage is chondrocytes in lacunae within a matrix of collagen and a water-trapping gel. The trapped water is what lets it take repeated load.
  • No vessels, no nerves, no lymphatics. Everything difficult about cartilage follows from these three.
  • It heals badly because repair cells cannot arrive and resident cells cannot migrate. Repair tissue, when it forms, is fibrocartilage.
  • A defect reaching subchondral bone bleeds and does repair — the basis of some surgical techniques.
  • Articular cartilage has no perichondrium and is fed by synovial fluid, driven by loading and unloading. Movement feeds cartilage.
  • Hyaline glides, elastic springs back, fibrocartilage takes compression and tension together.
  • Articular cartilage zones: superficial fibres parallel (shear), middle oblique, deep perpendicular (compression), calcified anchoring below the tidemark.
  • Interstitial growth is from within; appositional is from the perichondrium. Both slow with age.
  • Wear runs matrix change, fibrillation, thinning, then bone. Pain arrives at the last stage, because the cartilage itself cannot hurt.
  • Imaging and symptoms come from different tissues, so they need not agree.

Further reading

BookWhat it adds here
B D Chaurasia's Handbook of General Anatomy
Chaurasia and Garg
Concise coverage of cartilage types and their distribution, in the order used above.
BRS Cell Biology and Histology
Gartner
The microscopic detail, including matrix composition and how the three types are told apart down a microscope.
Anatomy and Human Movement: Structure and Function
Palastanga, Field and Soames
The mechanical behaviour of articular cartilage under load, which is the part that matters most in practice.
Di Fiore's Atlas of Histology
Eroschenko
Photomicrographs, if you want to see the three types rather than read about them.

Reviewed by the Physiotherapist India Team. · Human Anatomy contents