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Published on: July 18, 2008
Rhes Counteracts Dopamine Neuron Degeneration and Neuroinflammation Depending on Gender and Age
Giulia Costa1, Annalisa Pinna2, Pier Francesca Porceddu1
1Department of Biomedical Sciences, Section of Neuropsychopharmacology, University of Cagliari, Cagliari, Italy.
Abstract:
We have recently shown that male Rhes knockout (KO) mice develop a mild form of spontaneous Parkinson's disease (PD)-like phenotype, characterized by motor impairment and a decrease in nigrostriatal dopamine (DA) neurons. Experimental evidence has implicated neuroinflammation in PD progression, and the presence of activated glial cells has been correlated with DA neuron degeneration. Despite this, several factors, such as gender, have been found to affect DAergic neuron degeneration and influence neuroinflammation, explaining the differences between men and women in the etiology of PD. On these basis, we studied age and gender differences in DA neuron degeneration and gliosis in the nigrostriatal system of adult (3-month-old) and middle aged (12-month-old) male and female Rhes wild-type (WT) and KO mice. Through immunohistochemistry, tyrosine hydroxylase (TH), microglial (complement type 3 receptor [CD11b]) and astroglial (glial fibrillary acid protein [GFAP]) increase, were evaluated. Adult male Rhes KO mice showed a decrease in TH and an increase in CD11b, both in the caudate putamen (CPu) and substantia nigra pars compacta (SNc), and an increase in GFAP in the CPu. In contrast, adult female Rhes KO mice showed only a decrease in TH in the SNc, whereas no modifications to the levels of GFAP and CD11b were observed in the CPu or SNc. Middle aged male Rhes KO mice showed a decrease in TH in the CPu and SNc, and an increase in GFAP and CD11b in the SNc. Middle aged female Rhes KO mice showed a decrease in TH in the CPu and SNc and an increase in CD11b only in the CPu, but no modifications to GFAP levels. The more marked DA neuron degeneration and neuroinflammation in male compared with female Rhes KO mice, while confirming the role of Rhes as an important protein for DA neuron survival, gives support to Rhes KO mice as a valuable preclinical model for studying the vulnerability factors of DA neuron degeneration as in PD.
Insights
Male Rhes knockout mice show greater Parkinson's disease-like neurodegeneration and neuroinflammation than females. This highlights Rhes protein's role in dopamine neuron survival and supports Rhes KO mice as a Parkinson's disease model.
Area of Science:
- Neuroscience
- Neurodegenerative Diseases
- Parkinson's Disease Research
Background:
- Parkinson's disease (PD) involves dopamine (DA) neuron degeneration and neuroinflammation.
- Gender differences exist in PD etiology, affecting DAergic neuron degeneration and neuroinflammation.
- Rhes knockout (KO) mice exhibit a spontaneous PD-like phenotype with motor impairment.
Purpose of the Study:
- To investigate age and gender differences in DA neuron degeneration and gliosis in Rhes WT and KO mice.
- To evaluate the role of Rhes protein in DA neuron survival and neuroinflammation in a PD model.
Main Methods:
- Studied adult (3-month-old) and middle-aged (12-month-old) male and female Rhes WT and KO mice.
- Utilized immunohistochemistry to assess tyrosine hydroxylase (TH), CD11b (microglia), and GFAP (astrocytes).
- Quantified DA neuron degeneration and gliosis in the nigrostriatal system (caudate putamen and substantia nigra).
Main Results:
- Male Rhes KO mice exhibited significant TH decrease and increased CD11b/GFAP compared to females across ages.
- Adult male Rhes KO mice showed TH decrease and CD11b/GFAP increase in CPu and SNc.
- Middle-aged male Rhes KO mice displayed TH decrease and CD11b/GFAP increase in CPu and SNc, with females showing less severe changes.
Conclusions:
- Rhes protein is crucial for DA neuron survival, and its absence leads to PD-like pathology.
- Male Rhes KO mice demonstrate more pronounced DA neuron degeneration and neuroinflammation than females.
- Rhes KO mice serve as a valuable preclinical model for studying gender-specific vulnerability factors in PD.
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