Residual calcium remains in the presynaptic terminal after an action potential and adds to the calcium signal produced by a following impulse. This increased calcium availability enhances neurotransmitter release from the terminal. The effect is therefore strongly influenced by the interval between impulses, allowing recent activity to transiently strengthen communication when signals arrive in rapid succession.
Repeated activation can reduce transmission as readily releasable synaptic vesicles become depleted. Depression may also arise when the release machinery becomes temporarily less responsive. These mechanisms limit the amount of neurotransmitter released by subsequent impulses, helping explain why high-frequency stimulation can progressively weaken synaptic communication even while action potentials continue to arrive.
Facilitation benefits from closely spaced impulses because residual calcium can enhance release during a subsequent action potential. Depression becomes more prominent when repeated activity consumes available releasable vesicles or temporarily reduces release responsiveness. Their opposing dependence on stimulus timing and frequency enables synapses to adjust signal strength according to recent patterns of neural activity.
The balance determines whether a synapse emphasizes rapidly repeated inputs or limits transmission during sustained activity. Facilitation can make closely timed signals more effective, whereas depression can reduce responses as stimulation continues. By changing how signal strength depends on recent input history, these mechanisms contribute to neural coding and circuit computation rather than simply transmitting every impulse with equal impact.
A useful approach is to compare synaptic communication across different stimulus timings and frequencies, focusing on whether closely spaced activity strengthens or weakens subsequent transmission. Interpreting these changes alongside residual calcium, vesicle availability, and release responsiveness helps distinguish facilitation from depression. The resulting patterns provide information about how a synapse processes temporal features of neural input.
Synaptic facilitation and depression offer a framework for understanding how neural circuits adjust communication during changing patterns of activity. Their effects are relevant to sensory adaptation, in which responses can change with ongoing stimulation, and to circuit computation. Studying altered transmission through these mechanisms also helps investigate changes associated with learning and neurological disease.