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Exogenous Administration of Microsomes-associated Alpha-synuclein Aggregates to Primary Neurons As a Powerful Cell Model of Fibrils Formation
Published on: June 26, 2018
Toxic properties of microsome-associated alpha-synuclein species in mouse primary neurons
Emanuela Colla1, Giulia Panattoni1, Alessio Ricci1
1Bio@SNS Laboratory, Scuola Normale Superiore, Pisa, Italy.
Abstract:
α-synuclein (αS) is a small protein that self-aggregates into α-helical oligomer species and subsequently into larger insoluble amyloid fibrils that accumulate in intraneuronal inclusions during the development of Parkinson's disease. Toxicity of αS oligomers and fibrils has been long debated and more recent data are suggesting that both species can induce neurodegeneration. However while most of these data are based on differences in structure between oligomer and aggregates, often preassembled in vitro, the in vivo situation might be more complex and subcellular locations where αS species accumulate, rather than their conformation, might contribute to enhanced toxicity. In line with this observation, we have shown that αS oligomers and aggregates are associated with the endoplasmic reticulum/microsomes (ER/M) membrane in vivo and how accumulation of soluble αS oligomers at the ER/M level precedes neuronal degeneration in a mouse model of α-synucleinopathies. In this paper we took a further step, investigating the biochemical and functional features of αS species associated with the ER/M membrane. We found that by comparison with non-microsomal associated αS (P10), the ER/M-associated αS pool is a unique population of oligomers and aggregates with specific biochemical traits such as increased aggregation, N- and C-terminal truncations and phosphorylation at serine 129. Moreover, when administered to murine primary neurons, ER/M-associated αS species isolated from diseased A53T human αS transgenic mice induced neuronal changes in a time- and dose-dependent manner. In fact the addition of small amounts of ER/M-associated αS species from diseased mice to primary cultures induced the formation of beads-like structures or strings of fibrous αS aggregates along the neurites, occasionally covering the entire process or localizing at the soma level. By comparison treatment with P10 fractions from the same diseased mice resulted in the formation of scarce and small puncta only when administered at high amount. Moreover, increasing the amount of P100/M fractions obtained from diseased and, more surprisingly, from presymptomatic mice induced a significant level of neuronal death that was prevented when neurons were treated with ER/M fractions immunodepleted of αS high molecular weight (HMW) species. These data provide the first evidence of the existence of two different populations of αS HMW species in vivo, putting the spotlight on the association to ER/M membrane as a necessary step for the acquisition of αS toxic features.
Insights
Alpha-synuclein (αS) aggregates associated with the endoplasmic reticulum/microsomes (ER/M) membrane are toxic in Parkinson's disease models. These ER/M-associated αS species, distinct from other forms, drive neurodegeneration.
Area of Science:
- Neuroscience
- Molecular Biology
- Biochemistry
Background:
- Alpha-synuclein (αS) aggregation into oligomers and fibrils is central to Parkinson's disease pathogenesis.
- The toxicity of different αS species and their subcellular localization in vivo remain incompletely understood.
- Previous work linked αS aggregates to the endoplasmic reticulum/microsomes (ER/M) membrane, preceding neurodegeneration.
Purpose of the Study:
- To investigate the biochemical and functional characteristics of ER/M-associated αS species.
- To determine if ER/M-associated αS species contribute to neuronal toxicity in vivo.
- To compare the toxicity of ER/M-associated αS with non-microsomal αS fractions.
Main Methods:
- Isolation and biochemical characterization of ER/M-associated αS and non-microsomal αS (P10) fractions from αS transgenic mice.
- Analysis of αS aggregation, N- and C-terminal truncations, and serine 129 phosphorylation.
- Administration of isolated αS species to primary murine neurons to assess neurotoxicity and aggregate formation.
Main Results:
- ER/M-associated αS exhibited unique biochemical traits: increased aggregation, truncations, and phosphorylation compared to P10 fractions.
- ER/M-associated αS from diseased mice induced dose- and time-dependent neuronal changes, including aggregate formation and cell death.
- Non-microsomal αS (P10) showed minimal effects, while ER/M fractions, particularly high molecular weight (HMW) species, were potently neurotoxic, even from presymptomatic mice.
Conclusions:
- The study identifies distinct populations of αS high molecular weight (HMW) species in vivo.
- Association with the ER/M membrane is a critical step for αS to acquire toxic properties.
- ER/M-associated αS species are potent inducers of neurodegeneration in Parkinson's disease models.
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