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🦷 Dentin Hypersensitivity Mechanism Simulator

This simulator illustrates the hydrodynamic theory of tooth sensitivity — movement of fluid in dentinal tubules upon exposure of dentin causes a painful signal to cold or heat.

Cavities & Tooth Decay2DModerate60 FPS
dentin-hypersensitivity-hydrodynamic-simulator ↗ Open standalone

Intact Enamel and Cementum Seal the Tubules

Healthy teeth hide dentin under enamel and cementum.

  • 45,000/mm²: Tubule density (near pulp) (per Garberoglio & Brannstrom)
  • 2.5 µm: Tubule diameter (pulp end) (tapers toward surface)
  • ~2.5 mm: Enamel thickness (cusp) (protective outer layer)
  • None: Baseline pain response (tubules fully sealed)

Dentin structure

Dentin is riddled with microscopic fluid-filled tubules.

Enamel and cementum shield

Enamel covers crowns, cementum covers roots below gum.

Why no pain occurs

Sealed tubules block fluid shifts — no nerve trigger.

Gum Recession and Enamel Wear Expose Tubules

Lost enamel or receded gums uncover raw tubule openings.

  • ~50%: Adults with recession (over age 50)
  • Acid, brushing: Erosion cause (wears enamel and cementum)
  • ~1–4 µm: Exposed tubule opening (wide enough for fluid flow)
  • ~8 tubules/mm²: Sensitivity onset threshold (open needed for symptoms)

Gingival recession

Gums pull back, exposing root cementum and dentin.

Enamel erosion and abrasion

Acidic diets and hard brushing strip enamel away.

Smear layer removal

Scaling or acid can strip tubule-plugging debris.

Cold Stimulus Contracts Fluid Inside Tubules

Cold, heat, sweet, or air can all trigger tubule flow.

  • Outward: Cold contraction effect (fluid flows toward surface)
  • Inward: Heat expansion effect (fluid flows toward pulp)
  • <10°C: Typical trigger temp (cold water or air)
  • <1 sec: Response latency (near-instant fluid shift)

Brannstrom hydrodynamic theory

Stimuli move tubule fluid instead of touching nerves directly.

Cold vs heat direction

Cold contracts fluid outward; heat expands it inward.

Other common triggers

Sweet, sour, and tactile stimuli also shift fluid.

Rapid Fluid Shift Reaches the Odontoblast-Nerve Complex

Fast flow displaces odontoblasts wrapped around pulpal nerve endings.

  • Pulp-dentin border: Odontoblast layer location (lines pulp chamber wall)
  • Aδ fibers: Nerve fiber type (fast, myelinated, sharp pain)
  • Milliseconds: Flow-to-signal delay (near-instant mechanotransduction)
  • Very small: Pressure change sensed (micron-scale fluid displacement)

Odontoblast processes

Cell extensions run partway into tubules from the pulp.

Mechanoreceptor activation

Fluid shear deforms nerve endings near odontoblasts.

Threshold-dependent response

Only fast, large fluid shifts trigger a signal.

Nerve Fires — Sharp, Transient Pain Sensation

Aδ fibers fire a brief, sharp pain that fades quickly.

  • Sharp, brief: Pain character (seconds, not sustained)
  • ~20 m/s: Fiber conduction speed (fast Aδ myelinated fibers)
  • 1 in 8: Global prevalence (adults report sensitivity)
  • Tubule occlusion: Management approach (desensitizing agents seal flow)

Signal transmission

Aδ fibers relay sharp pain to the trigeminal pathway.

Transient nature of pain

Pain stops once the stimulus and flow subside.

Treatment via occlusion

Desensitizing toothpaste plugs tubules, blocking future flow.

Key insight

Blocking fluid movement, not numbing nerves, stops most sensitivity pain.
⚙ Under the hood

This simulator illustrates the hydrodynamic theory of tooth sensitivity — movement of fluid in dentinal tubules upon exposure of dentin causes a painful signal to cold or heat.

CanvasBiomedicine

2D · HTML5 Canvas 2D · 60 FPS target · runs fully client-side, no install

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