Mansour Azimzadeh, Masoud Azimzadeh
We propose a four-layer hierarchical framework in which plasticity is shaped by energetic constraints, homeostatic stability, neuromodulatory gating, and experience-dependent synaptic modification.
Brain plasticity enables adaptive learning, memory, and behavior, yet it is neither unconstrained nor automatic. Emerging evidence indicates that synaptic change occurs within a hierarchy of interacting regulatory layers that collectively determine when, where, and how plasticity is expressed. We propose a four-layer hierarchical framework in which plasticity is shaped by energetic constraints, homeostatic stability, neuromodulatory gating, and experience-dependent synaptic modification. Energetic limits set metabolic boundaries for synaptic change, while homeostatic mechanisms maintain network excitability and excitation-inhibition balance. Neuromodulators, including dopamine, acetylcholine, noradrenaline, and serotonin, dynamically gate plasticity based on behavioral relevance, salience, and internal state. Finally, Hebbian and spike-timing-dependent mechanisms implement input-specific synaptic modifications that encode adaptive information. Dysregulation at any of these layers is proposed to contribute to clinical deficits: insufficient gating impairs learning and motivation, excessive or shifted gating balance stabilizes maladaptive circuits or distorts salience, and reduced consistency in gating dynamics undermines attention and flexibility. This perspective reframes neurological and psychiatric disorders as conditions of controlled plasticity failure (i.e., failure of one or more regulatory layers to appropriately permit or restrict synaptic change) rather than simple neurotransmitter imbalances. By integrating metabolic, cellular, circuit, and behavioral dimensions, our framework provides a mechanistic understanding of adaptive and maladaptive plasticity, offering principles to guide therapeutic interventions that restore context-appropriate learning and cognitive function.