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Norway

PMID:23160237  

Abnormal development of NG2+PDGFR-α+ neural progenitor cells leads to neonatal hydrocephalus in a ciliopathy mouse model.

Calvin S Carter | Timothy W Vogel | Qihong Zhang | Seongjin Seo | Ruth E Swiderski | Thomas O Moninger | Martin D Cassell | Daniel R Thedens | Kim M Keppler-Noreuil | Peggy Nopoulos | Darryl Y Nishimura | Charles C Searby | Kevin Bugge | Val C Sheffield
Nature medicine | 2012

Hydrocephalus is a common neurological disorder that leads to expansion of the cerebral ventricles and is associated with a high rate of morbidity and mortality. Most neonatal cases are of unknown etiology and are likely to have complex inheritance involving multiple genes and environmental factors. Identifying molecular mechanisms for neonatal hydrocephalus and developing noninvasive treatment modalities are high priorities. Here we use a hydrocephalic mouse model of the human ciliopathy Bardet-Biedl Syndrome (BBS) and identify a role for neural progenitors in the pathogenesis of neonatal hydrocephalus. We found that hydrocephalus in this mouse model is caused by aberrant platelet-derived growth factor receptor α (PDGFR-α) signaling, resulting in increased apoptosis and impaired proliferation of chondroitin sulfate proteoglycan 4 (also known as neuron-glial antigen 2 or NG2)(+)PDGFR-α(+) neural progenitors. Targeting this pathway with lithium treatment rescued NG2(+)PDGFR-α(+) progenitor cell proliferation in BBS mutant mice, reducing their ventricular volume. Our findings demonstrate that neural progenitors are crucial in the pathogenesis of neonatal hydrocephalus, and we identify new therapeutic targets for this common neurological disorder.

Pubmed ID: 23160237

Research resources used in this publication

None found

Antibodies used in this publication

None found

Associated grants

  • Agency: NEI NIH HHS, United States
    Id: R01 EY011298
  • Agency: NEI NIH HHS, United States
    Id: R01 EY017168
  • Agency: NEI NIH HHS, United States
    Id: R01 EY022616

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Jackson Laboratory (tool)

RRID:SCR_004633

An independent, nonprofit organization focused on mammalian genetics research to advance human health. Their mission is to discover the genetic basis for preventing, treating, and curing human disease, and to enable research for the global biomedical community. Jackson Laboratory breeds and manages colonies of mice as resources for other research institutions and laboratories, along with providing software and techniques. Jackson Lab also conducts genetic research and provides educational material for various educational levels.

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129/SvEv (tool)

RRID:MGI:5653381

laboratory mouse with name 129/SvEv from MGI.

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C57BL/6NJ (tool)

RRID:IMSR_JAX:005304

Mus musculus with name C57BL/6NJ from IMSR.

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