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March 5, 2026Proceedings of the National Academy of Sciences3 citations

Enhancing KCC2 function reduces interictal activity and prevents seizures in temporal lobe epilepsy

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FDFlorian DonnegerAZAdrien ZaninJBJérémy Besson

Key Points

  • The aim is to examine how enhancing KCC2 function can influence interictal activity and prevent seizures in temporal lobe epilepsy.
  • Utilized two small molecules, prochlorperazine and CLP-257, as KCC2 function enhancers.
  • Conducted in vitro recordings from resected brain tissue of drug-resistant mTLE patients.
  • Performed in vivo recordings using a mouse model of temporal lobe epilepsy.
  • Both PCPZ and CLP-257 enhanced KCC2 function and clustering in cortical neurons.
  • These compounds reduced spontaneous epileptiform activity in both in vitro and in vivo models.
  • CLP-257 selectively increased extrasynaptic GABA A receptor-mediated currents without altering phosphorylation.

Abstract

The neuronal K/Cl cotransporter KCC2 regulates the transmembrane chloride gradient, which controls the efficacy of GABAergic signaling. In mesial temporal lobe epilepsy (mTLE) and other neurological disorders, reduced KCC2 expression or function can result in depolarizing GABA signaling, which is thought to contribute to pathological activity and seizures. Therefore, restoring chloride homeostasis represents a promising therapeutic strategy. We investigated the mechanisms and antiseizure effects of two small molecules, prochlorperazine (PCPZ) and CLP-257, that have been identified as potential KCC2 enhancers. We found that both compounds enhance KCC2 function and clustering in cortical neurons while reducing its membrane diffusion, without altering canonical regulatory phosphorylation. CLP-257 also selectively increased extrasynaptic, but not synaptic, GABA A receptor-mediated currents. Using in vitro recordings from resected brain tissue of patients with drug-resistant mTLE and in vivo recordings from a mouse model, we show that PCPZ and CLP-257 (or its prodrug CLP-290) effectively suppressed spontaneous epileptiform activity in both models. These findings reveal that PCPZ and CLP-257 act as genuine KCC2 enhancers and provide experimental evidence of the therapeutic potential of such compounds for treating drug-resistant mTLE.

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Cite This Study

Donneger et al. (2026) studied this question.

synapsesocial.com/papers/69a91df9d6127c7a504c174bhttps://doi.org/10.1073/pnas.2522722123
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Potassium–chloride cotransporter 2 activity dampens induced ictal‐like activity in neocortical slices containing the seizure propagation zone of temporal lobe epilepsy patients2025
  2. 2Abnormal KCC2 expression and function in a mouse model of epilepsy and tuberous sclerosis complex2026
  3. 3<scp>KCC2</scp> Dysfunction Mediated by Microglial <scp>BDNF</scp> / <scp>TrkB</scp> Signaling Exacerbates Early Post‐Stroke Seizure Susceptibility2026 · 3 citations
  4. 4KCC2 activation during postnatal development alleviates long-term deficits in CDKL5-deficient mice2026
  5. 5WNK-SPAK/OSR1 signaling pathway facilitates ictal activity via reduced neuronal chloride extrusion rate2026