Abstract / Summary
Aims: Seizure generation has been strongly linked to the accumulation of extracellular potassium. As astrocytes play a key role in potassium homeostasis, astrocyte targeted optogenetic modulation of extracellular potassium has been proposed as a novel strategy for seizure control. The effectiveness of such modulation is expected to depend strongly on the ion selectivity of the employed opsin. This study aims to mechanistically compare potassium-selective (WiChR) and cation-conducting (ChR2-like, ChR2*) opsins for astrocyte targeted modulation of extracellular potassium, and to determine how astrocytic properties and stimulation parameters influence modulation efficacy.
Methods: A conductance-based computational framework was used to model astrocyte-extracellular space interactions, incorporating ion-specific photocurrents, Na + /K + -ATPase activity, and gap junction-mediated coupling within the astrocytic syncytium. Systematic parameter sweeps were performed to evaluate the influence of ion selectivity, astrocytic parameters, and stimulation paradigms on potassium dynamics.
Results: WiChR-based modulation consistently produced more effective and robust reductions in [K + ] e than ChR2*, via direct K + inward currents and reduced dependence on pump activity. In contrast, ChR2* primarily limited potassium accumulation rather than reversing it and exhibited greater sensitivity to parameter variations, particularly Na + /K + -ATPase activity. The effectiveness of astrocyte-targeted modulation was strongly dependent on syncytial integrity, with reduced gap junction coupling impairing potassium clearance. Optimal stimulation performance for WiChR was observed for a pulse repetition period of 20 ms, with outcomes determined by the interaction between opsin kinetics and stimulation parameters.
Conclusions: These results demonstrate that activation of WiChR opsins in astrocytes can reduce extracellular potassium levels and thereby modulate neuronal excitability. Ion selectivity emerges as a key determinant of modulation efficacy at the astrocytic level, with potassium-selective opsins providing a more direct and reliable approach than non-selective cation-conducting alternatives. Together, these findings establish a mechanistic basis for optogenetic activation of astrocytic potassium buffering as a potential strategy for seizure suppression and other neurological disorders associated with potassium dysregulation.