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Editorial & review policyHuman Anatomy · General anatomy
Two subjects in one chapter, and they belong together. Skin is the organ you touch in every assessment. Development explains why a single nerve root supplies both a muscle group and a patch of skin — which is the fact that makes neurological examination possible at all.
Skin is the largest organ in the body, and the only one you assess on every single patient whether you intend to or not. You see its colour, feel its temperature and texture, notice its scars, and press on it to reach everything beneath.
Figure 1 · What skin does
Figure 2 · The structure of the skin
Illustration to be added
A three-dimensional block of skin, cut away. Epidermis at the top with its layers named from the base upwards: stratum basale, spinosum, granulosum, lucidum (in thick skin) and corneum, with a melanocyte at the base. Dermis beneath, divided into papillary and reticular layers, with dermal papillae interlocking with the epidermis. Show within the dermis: a hair follicle with its arrector pili muscle and sebaceous gland, an eccrine sweat gland with its duct reaching the surface, a capillary loop, and the sensory receptors labelled - free nerve endings in the epidermis, Meissner corpuscle in a dermal papilla, Pacinian corpuscle deep in the hypodermis. Hypodermis at the bottom with fat lobules and a larger vessel. Warm skin tones, navy line work, gold leader lines.
| Layer | What it is | Notes that matter clinically |
|---|---|---|
| Epidermis | Stratified squamous epithelium, constantly renewing itself from its deepest layer upwards. No blood vessels at all. | Because it is avascular, a scrape that stays within the epidermis does not bleed and heals without scarring. |
| Dermis | Dense irregular connective tissue. Holds the vessels, nerves, hair follicles and glands. | Damage reaching here bleeds and heals with a scar. This is where the sensory receptors live. |
| Hypodermis subcutaneous, superficial fascia |
Loose connective tissue with fat. Not strictly part of the skin. | Insulates and cushions. Its thickness varies enormously between sites and between people. |
The epidermis renews itself continuously. Cells are produced at its base, move upwards, flatten and fill with keratin as they go, and are shed from the surface. The whole journey takes roughly a month. This is why the skin can repair itself endlessly, and why a superficial injury leaves nothing behind.
The line that decides whether there will be a scar
Injury confined to the epidermis heals by replacement, and the skin returns to normal. Injury reaching the dermis heals by repair with collagen, and collagen laid down in a hurry is not arranged like the original tissue. That is a scar. It is why depth, not size, predicts scarring.
| What you notice | What it may mean |
|---|---|
| Redness and warmth over a joint | Inflammation or infection beneath |
| A cold, pale limb | Poor arterial supply |
| Shiny, hairless, thin skin | Long-standing poor circulation, or altered sympathetic activity |
| Loss of sweating in a defined area | Autonomic fibres in that nerve are affected — a useful sign of a genuine nerve lesion |
| Non-blanching redness over a bony prominence | An early pressure injury. Act now. |
| An adherent, immobile scar | Tethering to deeper tissue, which can limit movement well away from the scar itself |
Pressure injury deserves particular attention, because preventing it is squarely a physiotherapist's business. Sustained pressure over a bony prominence blocks the small vessels in the dermis, and tissue that cannot be perfused dies. The sacrum, heels, greater trochanters and ischial tuberosities are the classic sites, because at each the skin is thin and the bone is close.
You are not asked to become an embryologist. You are asked to understand three things: where tissues come from, how the segmental pattern of the body arises, and why limbs are supplied the way they are. All three explain something you will use clinically.
Very early in development the embryo organises itself into three layers, and every tissue in the adult body traces back to one of them.
Figure 3 · The three germ layers and what each becomes
Two entries in that list are worth dwelling on.
Mesoderm gives rise to bone, cartilage, all connective tissue and all muscle — which is to say, almost everything a physiotherapist treats. If you remember only one germ layer, remember that one.
Neural crest is a population of cells that leaves the edges of the forming neural tube and migrates widely. It becomes the sensory ganglia, the autonomic ganglia, the Schwann cells that myelinate peripheral nerves, the adrenal medulla, the pigment cells of the skin and much of the face. It is an unusually versatile group of cells and it explains why some congenital conditions affect an odd-looking combination of structures at once.
Figure 4 · Neurulation and the neural crest
The nervous system begins as a thickened plate of ectoderm along the back of the embryo. Its edges rise into folds, the folds meet in the midline, and the whole thing rolls up into a tube that sinks beneath the surface. That tube becomes the brain and spinal cord.
The tube closes from the middle outwards, which means the two ends close last. Failure at either end produces a recognisable problem.
| If closure fails | Result | Why it matters to you |
|---|---|---|
| At the head end | The brain fails to form properly | Not survivable |
| At the tail end | Spina bifida, in a range of severities | A large part of paediatric neurological caseload. The level of the defect predicts which muscles work and which do not. |
Adequate folate before and during early pregnancy substantially reduces the risk of these defects, which is why supplementation is recommended before conception rather than after a pregnancy is confirmed — the tube has closed before most people know.
This is the section that pays off every day of your working life.
Alongside the neural tube, the mesoderm divides into paired blocks called somites, arranged one after another down the length of the embryo. Each somite then splits into three parts.
Figure 5 · What a somite becomes
Because one somite produces the bone, the muscle and the skin of one segment, and because one spinal nerve grows out to serve that somite, the adult body keeps a segmental pattern. A single nerve root therefore supplies:
Why this is the foundation of neurological examination
If a patient has weakness in a particular muscle group and altered sensation in a particular strip of skin, and both belong to the same segment, you have localised the problem to a nerve root. That is the whole logic of testing dermatomes and myotomes, and it works because of how the embryo was built.
Dermatomes overlap considerably in the adult, which is why damage to a single root often reduces sensation rather than abolishing it. Muscles are usually supplied by more than one root for the same reason, so a single root lesion typically weakens rather than paralyses.
Figure 6 · Limb development and rotation
Illustration to be added
Top row: the sequence of upper limb development from a small bud on the side of the embryo, through paddle stage, digital rays appearing, tissue between the rays being removed, to separated fingers. Bottom section: a front-facing figure at two stages. Stage one, both limb pairs projecting outwards with palms and soles facing forwards and elbows and knees pointing the same way. Stage two, after rotation, with curved arrows showing the upper limb rotating laterally and the lower limb rotating medially, and the resulting adult arrangement labelled: elbow pointing backwards, knee pointing forwards, extensors of the arm posterior and extensors of the thigh anterior. Include a small panel showing how the dermatome bands are carried into the limb and become spiral as a result of the rotation.
Limbs begin as small buds on the side of the embryo, at the levels their nerve supply comes from. The bud flattens into a paddle, ridges appear within it, and the tissue between the ridges is removed to separate the digits.
At first both pairs of limbs point outwards with their future soles and palms facing forwards. Then they rotate — and this is the part worth remembering, because it explains a great deal of confusing adult anatomy.
| Upper limb | Lower limb | |
|---|---|---|
| Rotates | Outwards, laterally | Inwards, medially |
| So the elbow and knee end up | Pointing backwards | Pointing forwards |
| Extensor muscles end up | On the back of the limb | On the front of the limb |
| Original thumb side | Ends up lateral | The great toe ends up medial |
This is why the elbow and knee bend in opposite directions, and why the extensors of the thigh sit at the front while the extensors of the arm sit at the back. It also explains why dermatomes spiral down a limb in the pattern they do rather than running in neat horizontal bands: the segments were laid down first, and then the limb twisted.
The practical payoff
You do not need to memorise the dermatome map as an arbitrary picture. It is a segmental sequence that has been rotated. Knowing that, the pattern becomes something you can reason about rather than something you can only recall.
The epidermis has no vessels and no receptors. The receptors sit in the dermis, which is also why damage that reaches sensation is damage that will scar.
Depth decides scarring. A long superficial graze may heal invisibly; a small deep cut will not.
Non-blanching redness over a bony prominence is already an injury. The time to act is then, not when the skin has broken.
They are a segmental sequence carried into a limb that then rotated. Understand the rotation and the map becomes logical.
Dermatomes overlap. A single root lesion usually reduces sensation rather than removing it, and usually weakens a muscle rather than paralysing it.
Bone, cartilage, connective tissue and every kind of muscle. Almost the entire subject matter of your profession comes from one germ layer.
Ten questions on this chapter. Tap one to see the answer and the reasoning.
Answer: (B) The dermis. The epidermis is entirely avascular, which is why a graze confined to it neither bleeds nor scars.
Answer: (C) Depth. Injury confined to the epidermis is replaced; injury reaching the dermis is repaired with collagen, and disorganised collagen is a scar.
Answer: (B) Mesoderm. It is worth remembering because it accounts for almost everything a physiotherapist treats.
Answer: (C) Neural crest, a migratory population leaving the edges of the closing neural tube. Its versatility explains why some congenital conditions affect an unlikely combination of structures.
Answer: (B) Spina bifida, in a range of severities. The level of the defect largely predicts which muscles function below it.
Answer: (D) The spinal cord comes from the neural tube, which is ectoderm. Somites are mesoderm and give rise to sclerotome, myotome and dermatome.
Answer: (B) Each somite makes the bone, muscle and skin of one segment, and one nerve root serves that somite. That shared origin is what makes the two tests point at the same level.
Answer: (B) Adjacent dermatomes overlap, so neighbouring roots still supply part of the area. Muscles are similarly supplied by more than one root, so weakness rather than paralysis is usual.
Answer: (B) The upper limb rotates laterally and the lower limb medially, which also places the extensors behind the arm and in front of the thigh.
Answer: (B) It is already tissue damage. Sustained pressure over a bony prominence blocks dermal perfusion, and waiting for the skin to break is waiting too long.
Everything on this page, in one screen
| Book | What it adds here |
|---|---|
| Langman's Medical Embryology Sadler |
The standard student text. Part 1 covers general embryology, part 2 goes system by system. |
| The Developing Human: Clinically Oriented Embryology Moore |
Development presented alongside the conditions it explains. |
| Human Embryology Inderbir Singh |
Widely used in Indian courses and closely matched to examination expectations. |
| B D Chaurasia's Handbook of General Anatomy Chaurasia and Garg |
The chapter on skin and fasciae, at the level this chapter needs. |
Reviewed by the Physiotherapist India Team. · Human Anatomy contents
