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Innate immune activation and aberrant function in the R6/2 mouse model and Huntington's disease iPSC-derived
Julien Gasser1, Gaelle Gillet1, Jorge S Valadas1
1Neuroinflammation Focus Area, Neuroscience Research, UCB Biopharma SRL, Braine-l'Alleud, Belgium.
Insights
Huntington's disease (HD) involves early immune cell activation and microglial changes impacting synapses. Targeting these microglial functions may offer new therapeutic strategies for HD cognitive and psychiatric symptoms.
Area of Science:
- Neuroscience
- Immunology
- Genetics
Background:
- Huntington's disease (HD) is an inherited neurodegenerative disorder characterized by CAG repeat expansion in the HTT gene.
- Alterations in neuronal circuitry and synaptic loss are hallmarks of HD, alongside immune system involvement.
- The precise role of microglial and peripheral immune activation in HD pathogenesis and synaptic health remains unclear.
Purpose of the Study:
- To investigate immune phenotypes and functional activation states of microglia and peripheral immunity in a mouse model of HD across disease stages.
- To characterize microglial morphology, surveillance, and phagocytosis, and their impact on synaptic loss.
- To assess the relevance of observed microglial behaviors to human HD through transcriptomic and iPSC-derived cell analyses.
Main Methods:
- Utilized the R6/2 mouse model of HD for pre-symptomatic, symptomatic, and end-stage analyses.
- Performed single-cell resolution characterization of microglial phenotypes, morphology, and functions (surveillance, phagocytosis).
- Conducted transcriptomic analysis on HD patient data and functional assessments using induced pluripotent stem cell (iPSC)-derived microglia.
Main Results:
- Observed temporal changes including peripheral immune cell infiltration and increased microglial activation and phagocytosis in pre-symptomatic HD.
- Found increased microglial surveillance and synaptic uptake correlating with reduced spine density in R6/2 mice.
- Identified upregulated endocytic and migratory gene pathways in human HD microglia and enhanced phagocytic/migratory functions in iPSC-derived HD microglia.
Conclusions:
- Aberrant microglial functions, including synaptic surveillance and phagocytosis, are evident early in HD pathogenesis.
- These microglial changes are conserved in human HD and correlate with synaptic loss.
- Targeting specific microglial functions may represent a promising therapeutic avenue for mitigating HD-related cognitive and psychiatric symptoms.
Abstract:
Huntington's disease (HD) is an inherited autosomal dominant neurodegenerative disease caused by CAG repeats in exon 1 of the HTT gene. A hallmark of HD along with other psychiatric and neurodegenerative diseases is alteration in the neuronal circuitry and synaptic loss. Microglia and peripheral innate immune activation have been reported in pre-symptomatic HD patients; however, what "activation" signifies for microglial and immune function in HD and how it impacts synaptic health remains unclear. In this study we sought to fill these gaps by capturing immune phenotypes and functional activation states of microglia and peripheral immunity in the R6/2 model of HD at pre-symptomatic, symptomatic and end stages of disease. These included characterizations of microglial phenotypes at single cell resolution, morphology, aberrant functions such as surveillance and phagocytosis and their impact on synaptic loss in vitro and ex vivo in R6/2 mouse brain tissue slices. To further understand how relevant the observed aberrant microglial behaviors are to human disease, transcriptomic analysis was performed using HD patient nuclear sequencing data and functional assessments were conducted using induced pluripotent stem cell (iPSC)-derived microglia. Our results show temporal changes in brain infiltration of peripheral lymphoid and myeloid cells, increases in microglial activation markers and phagocytic functions at the pre-symptomatic stages of disease. Increases in microglial surveillance and synaptic uptake parallel significant reduction of spine density in R6/2 mice. These findings were mirrored by an upregulation of gene signatures in the endocytic and migratory pathways in disease-associated microglial subsets in human HD brains, as well as increased phagocytic and migratory functions of iPSC-derived HD microglia. These results collectively suggest that targeting key and specific microglial functions related to synaptic surveillance and pruning may be therapeutically beneficial in attenuating cognitive decline and psychiatric aspects of HD.
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