Targeting heterozygous dominant negative variant of KCNA2 using Gapmer ASO for the treatment of drug-resistant epilepsy

A missense mutation c.1220C>G of KCN2A gene was recently identified in an infant with epilepsy. KCNA2 encodes KV1.2 subunits that form voltage-gated potassium channels (VGKC) via tetrameric assembly. The mutation results in amino acid change P407R at the highly conserved PVP motif. Functional cha...

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Veröffentlicht in:Molecular therapy. Nucleic acids 2024-12, Vol.35 (4), p.102316, Article 102316
Hauptverfasser: Huang, Hua, Ma, Dong Rui, Chan, Derrick Wei Shih, Ngoh, Adeline Seow Fen, Yu, Dejie, Ng, Shi Jun, En Chua, John Jia, Tan, Eng King, Chin, Hui-Lin, Goh, Denise Li Meng, Soong, Tuck Wah
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Sprache:eng
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Zusammenfassung:A missense mutation c.1220C>G of KCN2A gene was recently identified in an infant with epilepsy. KCNA2 encodes KV1.2 subunits that form voltage-gated potassium channels (VGKC) via tetrameric assembly. The mutation results in amino acid change P407R at the highly conserved PVP motif. Functional characterization revealed that mutant KV1.2_P407R subunits formed loss-of-function channels and suppressed both KV1.2 and KV1.1 channel activities. Hetero-tetrameric assembly of the KV1.2_P407R subunits with other neuronal voltage-gated potassium channels of Shaker subfamily could lead to general deficit of repolarizing potassium current and potentially underlie the enhanced seizure susceptibility. Indeed, expression of human KV1.2_P407R in early postnatal rat cortical neurons or genetically engineered hESC-derived neurons disclosed broadening of action potential duration and early afterdepolarization (EAD), associating with reduced potassium current. We hypothesize that Gapmer antisense oligonucleotides (ASOs) targeted to c.1220C>G mutation will selectively degrade the mutant mRNA while allowing the remaining wild-type (WT) subunits to form functional channels. As a proof of principle, delivery of Gapmer packaged in lipid nanoparticle into cortical neurons selectively suppressed KV1.2_P407R over the WT protein expression, reversing the broadening of action potential duration, abrogating the EAD and leading to overall increase in potassium current. [Display omitted] Huang and colleagues report characterization of a novel missense mutation in KCNA2 gene that is associated with drug-resistant epilepsy and explore a novel method to target the mutant mRNA using Gapmer antisense oligonucleotides (ASOs) as potential therapeutics.
ISSN:2162-2531
2162-2531
DOI:10.1016/j.omtn.2024.102316