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Fractionation for Resolution of Soluble and Insoluble Huntingtin Species
Published on: February 27, 2018
P2X7 Receptor Upregulation in Huntington's Disease Brains
Ivana Ollà1,2, María Santos-Galindo1,2, Ainara Elorza1,2
1Centro de Biología Molecular 'Severo Ochoa' (CBMSO) CSIC/UAM, Madrid, Spain.
Insights
Huntington
Area of Science:
- Neuroscience
- Genetics
- Molecular Biology
Background:
- Huntington's disease (HD) is a fatal neurodegenerative disorder caused by CAG repeat expansion in the huntingtin gene.
- The P2X7 receptor (P2X7R) is implicated in neuroinflammation and neuronal dysfunction.
- Previous studies suggested P2X7R's role in HD pathogenesis.
Purpose of the Study:
- To investigate the expression and splicing of P2X7R in the brains of Huntington's disease patients.
- To determine if P2X7R alterations observed in HD mouse models are present in human HD brains.
Main Methods:
- Analysis of postmortem human brain tissue (striatum) from HD patients and controls.
- Quantitative assessment of P2X7R protein and mRNA levels.
- Investigation of P2X7R gene splicing patterns, specifically intron retention.
Main Results:
- P2X7R protein levels, including both P2X7R-A and the human-specific P2X7R-B variant, are upregulated in the striatum of HD patients.
- Elevated mRNA levels of P2X7R correlate with increased protein expression.
- HD patients exhibit altered P2X7R splicing, with increased retention of introns 10 and 11.
Conclusions:
- P2X7R is significantly altered in the brains of Huntington's disease patients, both in expression and splicing.
- These findings confirm P2X7R's involvement in HD pathogenesis in humans.
- P2X7R represents a potential therapeutic target for Huntington's disease.
Abstract:
Huntington's disease (HD) is a fatal degenerative disorder affecting the nervous system. It is characterized by motor, cognitive, and psychiatric dysfunctions, with a late onset and an autosomal dominant pattern of inheritance. HD-causing mutation consists in an expansion of repeated CAG triplets in the huntingtin gene (HTT), encoding for an expanded polyglutamine (polyQ) stretch in the huntingtin protein (htt). The mutation causes neuronal dysfunction and loss through multiple mechanisms, affecting both the nucleus and cytoplasm. P2X7 receptor (P2X7R) emerged as a major player in neuroinflammation, since ATP - its endogenous ligand - is massively released under this condition. Indeed, P2X7R stimulation in the central nervous system (CNS) is known to enhance the release of pro-inflammatory cytokines from microglia and of neurotransmitters from neuronal presynaptic terminals, as well as to promote apoptosis. Previous experiments performed with neurons expressing the mutant huntingtin and exploiting HD mouse models demonstrated a role of P2X7R in HD. On the basis of those results, here, we explore for the first time the status of P2X7R in HD patients' brain. We report that in HD postmortem striatum, as earlier observed in HD mice, the protein levels of the full-length form of P2X7R, also named P2X7R-A, are upregulated. In addition, the exclusively human naturally occurring variant lacking the C-terminus region, P2X7R-B, is upregulated as well. As we show here, this augmented protein levels can be explained by elevated mRNA levels. Furthermore, in HD patients' striatum, P2X7R shows not only an augmented total transcript level but also an alteration of its splicing. Remarkably, P2X7R introns 10 and 11 are more retained in HD patients when compared with controls. Taken together, our data confirm that P2X7R is altered in brains of HD subjects and strengthen the notion that P2X7R may represent a potential therapeutic target for HD.
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