It is essential for normal structure and function of all cell membranes. Itsprimaryfunctionsincludemaintenanceiongradientacrossmembranes 2-4 anduptakeandreleaseofneurotransmitters. 5-7 Therefore, Na+-K+-ATPaseplaysacrucialroleinionhomeostasisandcellular excitability. Dysfunction of Na+-K+-ATPasemayleadtomanytypes ofcentralnervoussystem(CNS)disorders,includingepilepsy. 8-11 Epilepsyisacommonneurologicaldisordercharacterizedbyrecurrentspontaneousseizures, 12 causedbythehighlysynchronized firingofneuronswithhyperexcitability. 13 It affects about 70 million population around the world. 14 Unfortunately, about one-third of epilepticpatientsremaindrug-resistant, 15 leadingtoasituationthat needsamoreeffectivedrugtarget.Anincreasingnumberofstudies unveiled a significant role of Na+-K+-ATPase in epilepsy. Notably, mutation of genes encoding Na+-K+-ATPase leads to epilepsy as partofitsphenotype.Inrodentmodelsofepilepsy,theactivityof Na+-K+-ATPasewasreportedtochangeaswell.Pharmacologicalinhibition of Na+-K+-ATPasewillcauseepilepticseizureinrodentsas well. Na+-K+-ATPaseactivatingantibody,bycontrast,wasreported tohaveaprotectiveeffectonepilepsy.However,discordantresults arenotuncommon,probablyduetodifferencesinetiologies,testing timing, features of various epilepsy models, etc. Hence, in this review,webrieflysummarizestructureandphysiologicalfunctionof Na+-K+-ATPaseintheCNS.Thenweaimtosummarizeandevaluate currentunderstandingsofNa+-K+-ATPaseandepilepsy,hopingto provideacomprehensiveandnovelviewontheroleofATPaseinthe epileptic brain and also therapeutic strategies associated with the