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Neuropathology in mouse models of mucopolysaccharidosis type I, IIIA and IIIB
Fiona L Wilkinson1, Rebecca J Holley, Kia J Langford-Smith
1Stem Cell & Neurotherapies, Faculty of Medical and Human Sciences, University of Manchester, Manchester, United Kingdom.
Abstract:
Mucopolysaccharide diseases (MPS) are caused by deficiency of glycosaminoglycan (GAG) degrading enzymes, leading to GAG accumulation. Neurodegenerative MPS diseases exhibit cognitive decline, behavioural problems and shortened lifespan. We have characterised neuropathological changes in mouse models of MPSI, IIIA and IIIB to provide a better understanding of these events.Wild-type (WT), MPSI, IIIA and IIIB mouse brains were analysed at 4 and 9 months of age. Quantitative immunohistochemistry showed significantly increased lysosomal compartment, GM2 ganglioside storage, neuroinflammation, decreased and mislocalised synaptic vesicle associated membrane protein, (VAMP2), and decreased post-synaptic protein, Homer-1, in layers II/III-VI of the primary motor, somatosensory and parietal cortex. Total heparan sulphate (HS), was significantly elevated, and abnormally N-, 6-O and 2-O sulphated compared to WT, potentially altering HS-dependent cellular functions. Neuroinflammation was confirmed by significantly increased MCP-1, MIP-1α, IL-1α, using cytometric bead arrays. An overall genotype effect was seen in all parameters tested except for synaptophysin staining, neuronal cell number and cortical thickness which were not significantly different from WT. MPSIIIA and IIIB showed significantly more pronounced pathology than MPSI in lysosomal storage, astrocytosis, microgliosis and the percentage of 2-O sulphation of HS. We also observed significant time progression of all genotypes from 4-9 months in lysosomal storage, astrocytosis, microgliosis and synaptic disorganisation but not GM2 gangliosidosis. Individual genotype*time differences were disparate, with significant progression from 4 to 9 months only seen for MPSIIIB with lysosomal storage, MPSI with astrocytocis and MPSIIIA with microgliosis as well as neuronal loss. Transmission electron microscopy of MPS brains revealed dystrophic axons, axonal storage, and extensive lipid and lysosomal storage. These data lend novel insight to MPS neuropathology, suggesting that MPSIIIA and IIIB have more pronounced neuropathology than MPSI, yet all are still progressive, at least in some aspects of neuropathology, from 4-9 months.
Insights
Mucopolysaccharidoses (MPS) cause neurodegeneration due to enzyme deficiencies. MPSIIIA and IIIB show more severe brain pathology than MPSI, with progressive neuropathological changes observed over time.
Area of Science:
- Neuroscience
- Biochemistry
- Genetics
Background:
- Mucopolysaccharidoses (MPS) are genetic disorders resulting from enzyme deficiencies that impair glycosaminoglycan (GAG) degradation.
- Neurodegenerative MPS subtypes lead to cognitive decline, behavioral issues, and reduced lifespan.
- Understanding the neuropathology of MPS is crucial for developing effective treatments.
Purpose of the Study:
- To characterize and compare neuropathological changes in mouse models of Mucopolysaccharidoses type I (MPSI), IIIA (MPSIIIA), and IIIB (MPSIIIB).
- To investigate the progression of neuropathology from juvenile to adult stages in these MPS models.
Main Methods:
- Analysis of wild-type (WT) and MPS mouse brains (MPSI, IIIA, IIIB) at 4 and 9 months of age.
- Quantitative immunohistochemistry to assess lysosomal compartment size, GM2 ganglioside storage, neuroinflammation markers (MCP-1, MIP-1α, IL-1α), and synaptic proteins (VAMP2, Homer-1).
- Analysis of heparan sulfate (HS) structure and quantification of sulfation patterns. Transmission electron microscopy was used to examine ultrastructural changes.
Main Results:
- MPS brains exhibited increased lysosomal compartments, GM2 ganglioside storage, neuroinflammation, and synaptic protein alterations compared to WT.
- Heparan sulfate (HS) was elevated and abnormally sulfated in MPS models.
- MPSIIIA and MPSIIIB models displayed more severe lysosomal storage, astrocytosis, microgliosis, and HS 2-O-sulfation compared to MPSI.
- Progressive neuropathological changes were observed from 4 to 9 months in lysosomal storage, neuroinflammation, and synaptic organization across genotypes, with specific progressions noted for each MPS type.
Conclusions:
- MPSIIIA and MPSIIIB exhibit more pronounced neuropathology than MPSI in mouse models.
- Neuropathological deficits in MPS mouse models are progressive, indicating ongoing disease processes.
- These findings provide critical insights into the neuropathogenesis of MPS and highlight potential therapeutic targets.
