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Published on: October 20, 2019
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.
Abstract:
Tottering, rolling Nagoya, and leaner mutant mice all exhibit cerebellar ataxia to varying degrees, from mild (tottering mice) to severe (leaner mice). Collectively, these mice are regarded as tottering locus mutants because each of these mutant mice expresses a different autosomal recessive mutation in the gene coding for the alpha(1A) calcium ion channel protein, which is the pore forming subunit for P/Q-type high voltage activated calcium ion channels. These mutant mice all exhibit varying degrees of cerebellar dysfunction and neuronal cell death. Nitric oxide (NO) is an important messenger molecule in the central nervous system, especially in the cerebellum, and it is produced via the enzyme, nitric oxide synthase (NOS). We investigated expression of neuronal-NOS (n-NOS) in the cerebella of all three mutant mice, as revealed by NADPH-diaphorase (NADPH-d) histochemical staining, quantitation of n-NOS protein using Western blotting and quantitation of n-NOS mRNA using in situ hybridization. The expression of n-NOS mRNA and protein as well as the NADPH-d histochemical reaction were elevated in tottering and rolling Nagoya cerebella. n-NOS mRNA and the NADPH-d histochemical reaction were decreased in the leaner cerebellum, but the leaner mouse n-NOS protein concentration was not significantly different compared to age- and gender-matched controls. These findings suggest that NO may act as an important mediator in the production of the neuropathology observed in these mutant mice.
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.

