This models the sensory-to-motor synapse in Aplysia's gill-withdrawal reflex — the circuit Eric Kandel used to win the 2000 Nobel Prize for showing that simple learning is a change in synaptic strength, not new wiring.
Habituation (non-associative, homosynaptic): each siphon touch releases a fraction of the readily-releasable vesicle pool V from the sensory neuron's terminal. Repeated touches faster than the pool can refill deplete V, so the postsynaptic EPSP — and the gill withdrawal it drives — shrinks with each stimulus.
dV/dt = (1 − V)/τ − p·δ(stim)
EPSP ∝ p · V (release probability × available pool)
Gill withdrawal ∝ EPSP
Sensitization (heterosynaptic facilitation): a noxious tail shock activates a facilitatory interneuron that releases serotonin (5-HT) onto the sensory-neuron terminal. Via the cAMP–PKA pathway this broadens the presynaptic action potential and boosts Ca²⁺ influx, multiplying the release probability p for several seconds — so even a depleted, habituated synapse suddenly fires a large EPSP again.
p(t) = p₀ · [1 + (G−1)·e^(−t/τ_5HT)] after a tail shock
- Touch Siphon — fires one test pulse without starting the train, so you can probe synaptic strength at any moment.
- Start Habituating Train — fires repeated touches at the chosen ISI; watch the vesicle pool (orange particles at the terminal) run down and the gill's withdrawal shrink.
- ISI slider — shorter intervals outrun vesicle recovery and habituate faster; long intervals let the pool refill between touches.
- Recovery time τ — how quickly depleted vesicles are replenished between stimuli.
- Sensitizing Tail Shock — releases serotonin (yellow burst) that facilitates release for ~6 s, temporarily overriding habituation — dishabituation and sensitization share this same mechanism.