| Literature DB >> 28647557 |
Melissa Bowerman1, Céline Salsac2, Véronique Bernard3, Claire Soulard4, Annie Dionne5, Emmanuelle Coque4, Salim Benlefki4, Pascale Hince6, Patrick A Dion6, Gillian Butler-Browne7, William Camu8, Jean-Pierre Bouchard5, Eric Delpire9, Guy A Rouleau10, Cédric Raoul4, Frédérique Scamps11.
Abstract
Loss-of-function mutations in the potassium-chloride cotransporter KCC3 lead to Andermann syndrome, a severe sensorimotor neuropathy characterized by areflexia, amyotrophy and locomotor abnormalities. The molecular events responsible for axonal loss remain poorly understood. Here, we establish that global or neuron-specific KCC3 loss-of-function in mice leads to early neuromuscular junction (NMJ) abnormalities and muscular atrophy that are consistent with the pre-synaptic neurotransmission defects observed in patients. KCC3 depletion does not modify chloride handling, but promotes an abnormal electrical activity among primary motoneurons and mislocalization of Na+/K+-ATPase α1 in spinal cord motoneurons. Moreover, the activity-targeting drug carbamazepine restores Na+/K+-ATPase α1 localization and reduces NMJ denervation in Slc12a6-/- mice. We here propose that abnormal motoneuron electrical activity contributes to the peripheral neuropathy observed in Andermann syndrome.Entities:
Keywords: Andermann syndrome; Chloride homeostasis; Electrical activity; Motoneuron; Na(+)/K(+) ATPase; Neuromuscular junction
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Year: 2017 PMID: 28647557 DOI: 10.1016/j.nbd.2017.06.013
Source DB: PubMed Journal: Neurobiol Dis ISSN: 0969-9961 Impact factor: 5.996