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Updated: Jan 27, 2026

Detection of Disease-associated α-synuclein by Enhanced ELISA in the Brain of Transgenic Mice Overexpressing Human A53T Mutated α-synuclein
Published on: May 30, 2015
Early disease course is unaltered in mucopolysaccharidosis type IIIA (MPS IIIA) mice lacking α-synuclein
K Soe1,2, H Beard1, D Neumann1
1Hopwood Centre for Neurobiology (HCN), South Australian Health and Medical Research Institute (SAHMRI), Adelaide, SA, Australia.
Background:
Sanfilippo syndrome (mucopolysaccharidosis type IIIA; MPS IIIA) is an inherited paediatric-onset neurodegenerative disorder caused by the lysosomal deficiency of sulphamidase with subsequent accumulation of heparan sulphate. The pathological mechanisms responsible for clinical disease are unknown; however, intraneuronal accumulation of aggregation-prone proteins such as α-synuclein, phosphorylated tau and amyloid precursor protein suggests inefficient intracellular trafficking and lysosomal degradation.
Aim:
To investigate the contribution the accumulating α-synuclein plays in early symptom emergence that is, impaired cognition, reduced anxiety and motor deficits, first detectable between 3-5 months of age.
Methods:
We have crossed congenic MPS IIIA mice with α-synuclein-deficient (Sncatm1Rosl /J) mice and evaluated phenotype and brain disease lesions.
Results:
In a battery of behavioural tests performed on mice aged 12-22 weeks, we were unable to differentiate α-synuclein-deficient MPS IIIA mice from those with one or both copies of the α-synuclein gene; all three affected genotypes were significantly impaired in test performance when compared to wild-type littermates. Histological studies revealed that the rate, location and nature of deposition of other proteinaceous lesions, the disruption to endolysosomal protein expression and the inflammatory response seen in the brain of α-synuclein-deficient MPS IIIA mice reflected that seen in MPS IIIA mice homo- or heterozygous for α-synuclein.
Conclusion:
Deletion and/or deficiency of α-synuclein does not influence clinical and neuropathological disease progression in murine MPS IIIA, demonstrating that in and of itself, this protein does not initiate the cognitive and motor symptoms that occur in the first 5 months of life in MPS IIIA mice.
Insights
Alpha-synuclein deficiency does not alter Sanfilippo syndrome type IIIA (MPS IIIA) progression in mice. This indicates alpha-synuclein does not initiate the early cognitive and motor deficits observed in MPS IIIA.
Area of Science:
- Neuroscience
- Genetics
- Biochemistry
Background:
- Sanfilippo syndrome type IIIA (MPS IIIA) is a rare inherited neurodegenerative disorder.
- Lysosomal deficiency of sulphamidase leads to heparan sulphate accumulation.
- Pathological mechanisms are unclear, but protein aggregation suggests impaired cellular degradation.
Purpose of the Study:
- Investigate alpha-synuclein's role in early MPS IIIA symptom development.
- Determine if alpha-synuclein contributes to cognitive, anxiety, and motor deficits.
Main Methods:
- Crossed MPS IIIA mice with alpha-synuclein-deficient mice.
- Evaluated behavioral phenotypes and brain pathology in resulting genotypes.
- Conducted behavioral tests and histological analyses on mice aged 12-22 weeks.
Main Results:
- Alpha-synuclein-deficient MPS IIIA mice showed no difference in performance compared to MPS IIIA mice with alpha-synuclein.
- All MPS IIIA genotypes exhibited significant impairments versus wild-type littermates.
- Histological findings indicated similar rates and types of protein deposition and inflammation across genotypes.
Conclusions:
- Alpha-synuclein deficiency does not impact clinical or neuropathological disease progression in murine MPS IIIA.
- Alpha-synuclein does not initiate the early cognitive and motor symptoms in MPS IIIA mice.
- Findings suggest other factors contribute to the initial disease manifestation in MPS IIIA.
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