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Neuroimmune pathways involvement in neurodegeneration of R6/2 mouse model of Huntington's disease
Emanuela Paldino1, Giorgia Migliorato1,2, Francesca R Fusco1
1Laboratory of Neuroanatomy, Fondazione Santa Lucia IRCCS, Rome, Italy.
Abstract:
Mechanisms of tissue damage in Huntington's disease (HD) involve excitotoxicity, mitochondrial damage, and neuroinflammation, including microglia activation. CD47 is a membrane protein that interacts with the inhibitory immunoreceptor SIRPα. Engagement of SIRPα by CD47 provides a downregulatory signal that inhibits host cell phagocytosis, promoting a "don't-eat-me" signal. These proteins are involved in the immune response and are downmodulated in inflammatory diseases. The involvement of inflammation and of the inflammasome in HD has already been described. In this study, we focused on other factors that can be involved in the unregulated inflammatory response that accelerates and exacerbate the neurodegenerative process in HD. Our results show that CD47 on striatal neurons decreased in HD mice, while it increased in wild type mice with age. SIRPα, on the other hand, was present in neurons in the wild type and increases in the R6/2 mice at all stages. Recruitment of SIRPα and binding to CD47 promotes the activation through phosphorylating events of non-receptor protein tyrosine phosphatase SHP-1 and SHP-2 in neurons and microglia. SHP phosphatases are able to curb the activity of NLRP3 inflammasome thereby reducing the detrimental effect of neuroinflammation. Such activity is mediated by the inhibition (dephosphorylation) of the proteins signal transducer and activator of transcription (STAT). We found that activated SHP-1 was present in microglia and neurons of WT mice at 5 and 13 weeks, increasing with time; while in R6/2 it was not localized in neurons but only in microglia, where it decreases with time. Consequently, STAT1 was overexpressed in neurons of R6/2 mice, as an effect of lack of modulation by SHP-1. Thus, our results shed light on the pathophysiology of neuronal damage, on one hand, paving the way toward a modulation of signal transducer proteins by specific inhibitors to achieve neuroprotection in HD, on the other.
Insights
In Huntington's disease (HD), CD47 protein decreases on neurons, while SIRPα increases, disrupting immune regulation. This pathway highlights potential therapeutic targets for neuroprotection by modulating signal transducer proteins.
Area of Science:
- Neuroscience
- Immunology
- Molecular Biology
Background:
- Huntington's disease (HD) pathogenesis involves neuroinflammation, excitotoxicity, and mitochondrial damage.
- The CD47-SIRPα axis regulates immune responses, with CD47 acting as a "don't-eat-me" signal.
- Dysregulation of CD47 and SIRPα is implicated in inflammatory conditions and neurodegenerative diseases.
Purpose of the Study:
- To investigate the role of CD47 and SIRPα in the neuroinflammatory processes of Huntington's disease.
- To explore the impact of CD47-SIRPα interactions on neuronal and microglial signaling pathways in HD models.
- To identify potential therapeutic targets for neuroprotection in HD by understanding these molecular mechanisms.
Main Methods:
- Comparative analysis of CD47 and SIRPα expression in neurons and microglia of wild-type and R6/2 HD mice.
- Assessment of protein tyrosine phosphatase SHP-1 and SHP-2 activation and localization.
- Evaluation of signal transducer and activator of transcription (STAT) protein levels in relation to SHP-1 activity.
Main Results:
- CD47 expression decreased on striatal neurons in HD mice, contrasting with age-related increases in wild-type mice.
- SIRPα expression increased in R6/2 mice and was present in neurons of wild-type mice.
- SHP-1 activation was reduced in neurons of R6/2 mice, leading to STAT1 overexpression and impaired inflammasome regulation.
Conclusions:
- The CD47-SIRPα pathway is dysregulated in HD, contributing to aberrant neuroinflammation.
- Impaired SHP-1 activity in neurons of HD mice leads to STAT1 overexpression, exacerbating neurodegeneration.
- Modulating signal transducer proteins offers a potential therapeutic strategy for neuroprotection in Huntington's disease.
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