Altered neuronal nitric oxide synthase expression in the cerebellum of calcium channel mutant mice

Im Joo Rhyu1, Sang-Soep Nahm, Seung Jun Hwang

  • 1Institute of Human Genetics and Department of Anatomy, Korea University College of Medicine, 126-1 Anam-Dong 5-Ga, Seongbuk-Ku, Seoul 136-705, South Korea.

Brain Research
|July 2, 2003
PubMed

Insights

Mutant mice with cerebellar ataxia show altered nitric oxide synthase (NOS) expression. These findings suggest nitric oxide (NO) plays a role in the neuropathology of these tottering locus mutants.

Area of Science:

  • Neuroscience
  • Genetics
  • Biochemistry

Background:

  • Tottering, rolling Nagoya, and leaner mice exhibit varying degrees of cerebellar ataxia due to mutations in the alpha(1A) calcium ion channel gene.
  • These mutations lead to cerebellar dysfunction and neuronal cell death.
  • Nitric oxide (NO), produced by nitric oxide synthase (NOS), is a key signaling molecule in the cerebellum.

Purpose of the Study:

  • To investigate the expression of neuronal nitric oxide synthase (n-NOS) in the cerebella of tottering, rolling Nagoya, and leaner mutant mice.
  • To determine the role of NO in the neuropathology associated with these tottering locus mutants.

Main Methods:

  • NADPH-diaphorase (NADPH-d) histochemical staining to visualize n-NOS activity.
  • Western blotting to quantify n-NOS protein levels.
  • In situ hybridization to measure n-NOS mRNA expression.

Main Results:

  • Elevated n-NOS mRNA and protein, and increased NADPH-d staining in tottering and rolling Nagoya cerebella.
  • Decreased n-NOS mRNA and NADPH-d staining in leaner cerebella, with no significant change in n-NOS protein.
  • Differential expression patterns of n-NOS in the three mutant mouse models.

Conclusions:

  • Nitric oxide signaling is altered in the cerebella of tottering locus mutants.
  • NO may act as a significant mediator in the neuropathological processes observed in these mice.
  • These findings highlight the complex role of NO in cerebellar function and dysfunction.