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Hyper-SUMOylation of the Kv7 potassium channel diminishes the M-current leading to seizures and sudden death.

Yitao Qi | Jingxiong Wang | Valerie C Bomben | De-Pei Li | Shao-Rui Chen | Hao Sun | Yutao Xi | John G Reed | Jinke Cheng | Hui-Lin Pan | Jeffrey L Noebels | Edward T H Yeh
Neuron | 2014

Sudden unexplained death in epilepsy (SUDEP) is the most common cause of premature mortality in epilepsy and was linked to mutations in ion channels; however, genes within the channel protein interactome might also represent pathogenic candidates. Here we show that mice with partial deficiency of Sentrin/SUMO-specific protease 2 (SENP2) develop spontaneous seizures and sudden death. SENP2 is highly enriched in the hippocampus, often the focus of epileptic seizures. SENP2 deficiency results in hyper-SUMOylation of multiple potassium channels known to regulate neuronal excitability. We demonstrate that the depolarizing M-current conducted by Kv7 channel is significantly diminished in SENP2-deficient hippocampal CA3 neurons, primarily responsible for neuronal hyperexcitability. Following seizures, SENP2-deficient mice develop atrioventricular conduction blocks and cardiac asystole. Both seizures and cardiac conduction blocks can be prevented by retigabine, a Kv7 channel opener. Thus, we uncover a disease-causing role for hyper-SUMOylation in the nervous system and establish an animal model for SUDEP.

Pubmed ID: 25189211

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Associated grants

  • Agency: NINDS NIH HHS, United States
    Id: NS0769
  • Agency: NINDS NIH HHS, United States
    Id: P20 NS076916
  • Agency: NINDS NIH HHS, United States
    Id: T32 NS043124
  • Agency: NHLBI NIH HHS, United States
    Id: R01 HL077400
  • Agency: NINDS NIH HHS, United States
    Id: U01 NS090340
  • Agency: NINDS NIH HHS, United States
    Id: NS29709
  • Agency: NCI NIH HHS, United States
    Id: P30 CA016672
  • Agency: NINDS NIH HHS, United States
    Id: R01 NS029709
  • Agency: NHLBI NIH HHS, United States
    Id: HL077400

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Allen Institute for Brain Science (tool)

RRID:SCR_006491

Seattle based independent, nonprofit medical research organization dedicated to accelerating the understanding of how human brain works. Provides free data and tools to researchers and educators and variety of unique online public resources for exploring the nervous system. Integrates gene expression data and neuroanatomy, along with data search and viewing tools, these resources are openly accessible via the Allen Brain Atlas data portal. Provides Allen Mouse Brain, Allen Spinal Cord Atlas, Allen Developing Mouse Brain Atlas, Allen Human Brain Atlas,Allen Mouse Brain Connectivity Atlas, Allen Cell Type Database, The Ivy Glioblastoma Atlas Project (Ivy GAP), The BrainSpan Atlas of the Developing Human Brain.

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