4.5 Article

Atp13a2-deficient mice exhibit neuronal ceroid lipofuscinosis, limited -synuclein accumulation and age-dependent sensorimotor deficits

Journal

HUMAN MOLECULAR GENETICS
Volume 22, Issue 10, Pages 2067-2082

Publisher

OXFORD UNIV PRESS
DOI: 10.1093/hmg/ddt057

Keywords

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Funding

  1. National Institutes of Health [NS070268, GM103436, DK050594, HL061974, NS077022, MH094955, NS076054]
  2. UF CTRND
  3. Department of Neuroscience
  4. UC Gardner Family Center for Parkinson's Disease and Movement Disorders
  5. Intramural Research program of the National Human Genome Research Institute at the National Institutes of Health, Bethesda, MD, USA

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Mutations in ATP13A2 (PARK9), encoding a lysosomal P-type ATPase, are associated with both KuforRakeb syndrome (KRS) and neuronal ceroid lipofuscinosis (NCL). KRS has recently been classified as a rare genetic form of Parkinsons disease (PD), whereas NCL is a lysosomal storage disorder. Although the transport activity of ATP13A2 has not been defined, in vitro studies show that its loss compromises lysosomal function, which in turn is thought to cause neuronal degeneration. To understand the role of ATP13A2 dysfunction in disease, we disrupted its gene in mice. Atp13a2(/) and Atp13a2(/) mice were tested behaviorally to assess sensorimotor and cognitive function at multiple ages. In the brain, lipofuscin accumulation, -synuclein aggregation and dopaminergic pathology were measured. Behaviorally, Atp13a2(/) mice displayed late-onset sensorimotor deficits. Accelerated deposition of autofluorescent storage material (lipofuscin) was observed in the cerebellum and in neurons of the hippocampus and the cortex of Atp13a2(/) mice. Immunoblot analysis showed increased insoluble -synuclein in the hippocampus, but not in the cortex or cerebellum. There was no change in the number of dopaminergic neurons in the substantia nigra or in striatal dopamine levels in aged Atp13a2(/) mice. These results show that the loss of Atp13a2 causes sensorimotor impairments, -synuclein accumulation as occurs in PD and related synucleinopathies, and accumulation of lipofuscin deposits characteristic of NCL, thus providing the first direct demonstration that null mutations in Atp13a2 can cause pathological features of both diseases in the same organism.

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