Draft — For practitioner review only · Version 0.1 · July 2026
03.02 Unit 3 of 4 Hypodermis & cell types
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Unit 3 · Hypodermis & cell types

Fat is not one layer, and skin is not one cell type

This unit covers the subcutaneous architecture beneath the dermis, then consolidates the specialised cell populations that run through every layer covered so far. By the end you should be able to explain why filler plane selection follows directly from layered anatomy, and which cell type a given clinical observation — pigmentation, erythema, volume loss, a granuloma — actually implicates.

  • ~8 minutes
  • 3 checkpoints
  • Level: All practitioners — tiered content

Learn · The hypodermis

A compartmentalised fat layer, not a uniform cushion

The hypodermis, or subcutis, lies below the reticular dermis and above the deep fascia or periosteum. It consists primarily of lobules of adipose tissue separated by fibrous septa.

In the face, the hypodermis is organised into anatomically distinct fat compartments — both superficial (sub-SMAS) and deep (subperiosteal) — which are critical to facial volumetrics, the understanding of facial ageing, and the safe placement of dermal fillers. Key facial fat compartments include the nasolabial fat, medial and lateral cheek fat, orbital fat (superficial and deep), the temporal fat pad, and the buccal fat pad (Bichat's fat pad).

Predict, then reveal

Facial fat compartments do not age uniformly — some deflate, others descend or herniate. Before reading on, predict which behaviour applies to the medial cheek fat compartment versus the buccal fat pad.

Hold your answer before you open this. The value is in having committed to a prediction first.

Advanced detail

The distinction between superficial (sub-SMAS) and deep (subperiosteal) compartments is what allows practitioners to reason about which structures a given injection depth is actually near. Named compartments are not simply anatomical trivia — they are the basis for predicting which vascular structures sit adjacent to a chosen injection plane in a given facial zone.

Clinical application — filler plane selection

The selection of injection plane for dermal filler is a direct application of layered skin anatomy. Superficial dermis injection produces surface-level definition — fine lip lines, tear trough. Mid-dermis injection provides lift and volume for moderate tissue deficiency. Deep dermis to supraperiosteal injection supports skeletal projection — cheekbones, chin, jawline, temples. Injection into or adjacent to a named fat compartment risks compartment disruption, asymmetric volume distribution, or — in the temporal and periorbital zones — vascular occlusion via proximity to named arteries. A thorough working knowledge of both the skin layers and the subcutaneous architecture is inseparable from safe filler practice.

Checkpoint 01 Awaiting commitment

A treatment plan calls for skeletal projection at the chin, using a deep dermis to supraperiosteal injection plane. Per the layered logic of filler placement, this plane is selected because:

Select an option to commit. The reasoning appears afterwards.

Learn · Key cell types

The cells behind every observation you make in clinic

Each skin layer covered so far contains specialised cells directly relevant to aesthetic medicine — as targets of treatment, as mediators of healing, or as sources of common presentations.

Key cell types of the skin
Cell type Location Primary function Aesthetic relevance
Keratinocyte All epidermal layers Barrier formation; structural protein synthesis; cytokine signalling Re-epithelialisation following resurfacing; target of retinoids and AHAs; source of inflammatory cytokines in wound healing
Melanocyte Stratum basale; hair follicle Melanin synthesis for UV protection; melanin transfer to keratinocytes Source of dyspigmentation (melasma, post-inflammatory hyperpigmentation, solar lentigines); target of tyrosinase inhibitors, laser and IPL
Langerhans cell Stratum spinosum Antigen presentation; immune surveillance; tolerance induction Reduced in photoaged skin; implicated in contact sensitisation and allergen response to topical treatments
Merkel cell Stratum basale Mechanoreception (light touch) Merkel cell carcinoma is a rare but clinically important malignancy to recognise in skin assessment
Fibroblast Papillary and reticular dermis Collagen I/III, elastin and glycosaminoglycan synthesis; wound healing; matrix remodelling Primary effector of collagen-stimulating treatments; activity declines with age
Mast cell Papillary dermis; perivascular Histamine release; IgE-mediated immunity; wound healing Post-treatment erythema and urticaria; increased density in rosacea — relevant when planning energy-based treatments
Macrophage Dermis; subcutaneous tissue Phagocytosis; inflammatory regulation; collagen remodelling direction Key mediator in wound healing; implicated in foreign-body granuloma response to filler
Adipocyte Hypodermis; facial fat compartments Energy storage; thermal insulation; volumetric support; endocrine function Facial volume loss (lipoatrophy) is a primary driver of facial ageing; filler replaces deflated compartment volume
Advanced detail

Macrophages direct the inflammatory and proliferative phases of wound healing and are implicated in the foreign-body granuloma response that can follow filler placement — a chronic macrophage-driven reaction to a persisting foreign material, distinct from the acute mast cell-mediated erythema seen immediately after energy-based treatment.

Checkpoint 02 Awaiting commitment

Facial volume loss (lipoatrophy) associated with ageing is primarily driven by changes in which cell type?

Select an option to commit. The reasoning appears afterwards.

Checkpoint 03 Awaiting commitment

Reduced density of this immune cell type in photoaged skin is implicated in altered contact sensitisation and allergen response to topical treatments:

Select an option to commit. The reasoning appears afterwards.

Unit 3 summary

Clinical takeaways

  1. The hypodermis is not a single fat layer. Distinct named compartments age differently — some deflate, others descend or herniate — directly informing filler strategy.
  2. Filler plane selection is a direct application of layered anatomy. Superficial, mid and deep planes achieve different clinical outcomes and carry different vascular risk.
  3. Skin's specialised cells extend well beyond keratinocytes. Melanocyte, Langerhans cell, Merkel cell, fibroblast, mast cell, macrophage and adipocyte each carry distinct clinical relevance — from pigmentation to wound healing to filler complications.
  4. Lipoatrophy is a primary driver of facial ageing's appearance. Adipocyte volume loss in specific compartments is distinct from, and complementary to, dermal collagen loss.