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Methods for the Modulation and Analysis of NF-κB-dependent Adult Neurogenesis
Published on: February 13, 2014
Notch3-Dependent Effects on Adult Neurogenesis and Hippocampus-Dependent Learning in a Modified Transgenic Model of
Fanny Ehret1, Ricardo Moreno Traspas2, Marie-Theres Neumuth1
1German Center for Neurodegenerative Diseases (DZNE), Dresden, Germany.
Insights
Notch3 regulates adult neurogenesis, crucial for spatial memory. CADASIL mutations impact memory but not neurogenesis in mice, suggesting Notch3
Area of Science:
- Neuroscience
- Genetics
- Dementia Research
Background:
- Notch3 protein regulates adult hippocampal neurogenesis.
- Cerebral Autosomal Dominant Arteriopathy with Subcortical Infarcts and Leukoencephalopathy (CADASIL) is a genetic dementia caused by Notch3 mutations.
- Altered neurogenesis may correlate with spatial memory deficits in CADASIL.
Purpose of the Study:
- Investigate the correlation between adult hippocampal neurogenesis and spatial memory in CADASIL transgenic mice.
- Assess the impact of Notch3 overexpression and CADASIL mutations on neurogenesis and spatial memory.
- Examine human CADASIL brain tissue for evidence of neurogenesis.
Main Methods:
- Generated CADASIL mouse model (TgN3) on C57BL/6J background.
- Utilized Morris water maze for spatial memory testing at 6 and 12 months.
- Performed immunohistochemistry for neurogenesis markers (calretinin) in mice and human samples.
Main Results:
- CADASIL mice exhibited deficits in re-learning and perseverance in the Morris water maze.
- Notch3 overexpression alone impaired spatial strategies and reduced adult neurogenesis.
- CADASIL mutation partially rescued strategy deficits but not neurogenesis changes.
- Human CADASIL brain tissue showed potential signs of new neurons.
Conclusions:
- Notch3 plays a role in adult neurogenesis and spatial memory.
- CADASIL mutation affects spatial memory but not Notch3-dependent neurogenesis changes in this model.
- Findings suggest a partial loss of function of Notch3 in CADASIL regarding behavioral aspects.
Abstract:
We and others have reported that Notch3 is a regulator of adult hippocampal neurogenesis. Cerebral Autosomal Dominant Arteriopathy with Subcortical Infarcts and Leukoencephalopathy (CADASIL), the most common genetic form of vascular dementia, is caused by mutations in Notch3. The present study intended to investigate whether there is a correlation between altered adult hippocampal neurogenesis and spatial memory performance in CADASIL transgenic mice. To overcome visual disabilities that hampered behavioral testing of the original mice (on an FVB background) we back-crossed the existing TgN3 CADASIL mouse model onto the C57BL/6J background. These animals showed an age-dependent increase in the pathognomonic granular osmiophilic material (GOM) deposition in the hippocampus. Analysis in the Morris water maze task at an age of 6 and 12 months revealed deficits in re-learning and perseverance in the CADASIL transgenic mice. Overexpression of Notch3 alone resulted in deficits in the use of spatial strategies and diminished adult neurogenesis in both age groups. The additional CADASIL mutation compensated the effect on strategy usage but not on adult neurogenesis. In brain bank tissue samples from deceased CADASIL patients we found signs of new neurons, as assessed by calretinin immunohistochemistry, but no conclusive quantification was possible. In summary, while our study confirmed the role of Notch3 in adult neurogenesis, we found a specific effect of the CADASIL mutation only on the reversion of the Notch3 effect on behavior, particularly visible at 6 months of age, consistent with a loss of function. The mutation did not revert the Notch3-dependent changes in adult neurogenesis or otherwise affected adult neurogenesis in this model.
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