Differential isoform-specific control of KCC2 function in developing and mature cortical neurons

The K-Cl cotransporter KCC2 is essential for fast synaptic inhibition in the mature brain. It is encoded by a single gene and expressed as two isoforms: KCC2a and KCC2b, which differ in their N-terminal domains. While KCC2b is predominant, the function of the weakly expressed KCC2a isoform remains unclear. Here, we reveal that KCC2a is a potent, bidirectional regulator of KCC2b membrane stability and function in cortical neurons. In immature neurons, where WNK-SPAK kinase activity is high, KCC2a promotes SPAK-dependent phosphorylation of KCC2b at Thr1007, which likely contributes to hindering its membrane expression and function. Conversely, in mature neurons with low basal WNK-SPAK activity, KCC2a promotes KCC2b expression, clustering, and function. At this stage, although accounting for less than 5% of total KCC2 mRNA, KCC2a is enriched in dendrites and within KCC2 clusters, where it prevents clathrin-mediated KCC2b endocytosis, as well as polyubiquitination and proteasomal degradation. Thus, KCC2a acts as a developmental switch that first inhibits KCC2b during early development and then ensures its membrane stability to support effective synaptic inhibition in the adult brain.

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Journal
EMBO Reports
Published
2026-09-05
DOI
https://doi.org/10.1038/s44319-026-00920-3
Primary Topic
Neuroscience and Neuropharmacology Research
Type
article
Field-Weighted Citation Impact
0.00

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article

Differential isoform-specific control of KCC2 function in developing and mature cortical neurons

Matti S. Airaksinen, Jean Christophe Poncer, Pauline Weinzettl, Marika Markkanen et al.
EMBO Reports
Neuroscience and Neuropharmacology Research
article

Differential isoform-specific control of KCC2 function in developing and mature cortical neurons

Matti S. Airaksinen, Jean Christophe Poncer, Pauline Weinzettl, Marika Markkanen, Marion Russeau, Carla Pagan
article en

Abstract

The K-Cl cotransporter KCC2 is essential for fast synaptic inhibition in the mature brain. It is encoded by a single gene and expressed as two isoforms: KCC2a and KCC2b, which differ in their N-terminal domains. While KCC2b is predominant, the function of the weakly expressed KCC2a isoform remains unclear. Here, we reveal that KCC2a is a potent, bidirectional regulator of KCC2b membrane stability and function in cortical neurons. In immature neurons, where WNK-SPAK kinase activity is high, KCC2a promotes SPAK-dependent phosphorylation of KCC2b at Thr1007, which likely contributes to hindering its membrane expression and function. Conversely, in mature neurons with low basal WNK-SPAK activity, KCC2a promotes KCC2b expression, clustering, and function. At this stage, although accounting for less than 5% of total KCC2 mRNA, KCC2a is enriched in dendrites and within KCC2 clusters, where it prevents clathrin-mediated KCC2b endocytosis, as well as polyubiquitination and proteasomal degradation. Thus, KCC2a acts as a developmental switch that first inhibits KCC2b during early development and then ensures its membrane stability to support effective synaptic inhibition in the adult brain.

EMBO Reports
Centre National de la Recherche Scientifique (FR), University of Helsinki (FI), Inserm (FR), Sorbonne Université (FR), Assistance Publique – Hôpitaux de Paris (FR), Institut de Psychiatrie et Neurosciences de Paris (FR), Institut du Fer à Moulin (FR)
Agence Nationale de la Recherche, Institut National de la Santé et de la Recherche Médicale, Erasmus+, Institut du Cerveau et de la Moelle Epinière
Openalex Percentile: Top 16%
Neuroscience and Neuropharmacology Research
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