Abnormal high-frequency burst firing of cerebellar neurons in rapid-onset dystonia-parkinsonism. Academic Article uri icon

Overview

abstract

  • Loss-of-function mutations in the α3 isoform of the Na(+)/K(+) ATPase (sodium pump) are responsible for rapid-onset dystonia parkinsonism (DYT12). Recently, a pharmacological model of DYT12 was generated implicating both the cerebellum and basal ganglia in the disorder. Notably, partially blocking sodium pumps in the cerebellum was necessary and sufficient for induction of dystonia. Thus, a key question that remains is how partially blocking sodium pumps in the cerebellum induces dystonia. In vivo recordings from dystonic mice revealed abnormal high-frequency bursting activity in neurons of the deep cerebellar nuclei (DCN), which comprise the bulk of cerebellar output. In the same mice, Purkinje cells, which provide strong inhibitory drive to DCN cells, also fired in a similarly erratic manner. In vitro studies demonstrated that Purkinje cells are highly sensitive to sodium pump dysfunction that alters the intrinsic pacemaking of these neurons, resulting in erratic burst firing similar to that identified in vivo. This abnormal firing abates when sodium pump function is restored and dystonia caused by partial block of sodium pumps can be similarly alleviated. These findings suggest that persistent high-frequency burst firing of cerebellar neurons caused by sodium pump dysfunction underlies dystonia in this model of DYT12.

publication date

  • August 27, 2014

Research

keywords

  • Cerebellum
  • Dystonic Disorders
  • Purkinje Cells
  • Sodium-Potassium-Exchanging ATPase

Identity

PubMed Central ID

  • PMC4145175

Scopus Document Identifier

  • 84906568748

Digital Object Identifier (DOI)

  • 10.1523/JNEUROSCI.1409-14.2014

PubMed ID

  • 25164667

Additional Document Info

volume

  • 34

issue

  • 35