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Published on: March 16, 2016
A novel mouse model for N-terminal truncated Aβ2-x generation through meprin β overexpression in astrocytes
Fred Armbrust1, Kira Bickenbach2, Hermann Altmeppen3
1Biochemical Institute, Unit for Degradomics of the Protease Web, University of Kiel, Otto-Hahn-Platz 9, 24118, Kiel, Germany. farmbrust@biochem.uni-kiel.de.
Abstract:
Neurotoxic amyloid-β (Aβ) peptides cause neurodegeneration in Alzheimer's disease (AD) patients' brains. They are released upon proteolytic processing of the amyloid precursor protein (APP) extracellularly at the β-secretase site and intramembranously at the γ-secretase site. Several AD mouse models were developed to conduct respective research in vivo. Most of these classical models overexpress human APP with mutations driving AD-associated pathogenic APP processing. However, the resulting pattern of Aβ species in the mouse brains differs from those observed in AD patients' brains. Particularly mutations proximal to the β-secretase cleavage site (e.g., the so-called Swedish APP (APPswe) fostering Aβ1-x formation) lead to artificial Aβ production, as N-terminally truncated Aβ peptides are hardly present in these mouse brains. Meprin β is an alternative β-secretase upregulated in brains of AD patients and capable of generating N-terminally truncated Aβ2-x peptides. Therefore, we aimed to generate a mouse model for the production of so far underestimated Aβ2-x peptides by conditionally overexpressing meprin β in astrocytes. We chose astrocytes as meprin β was detected in this cell type in close proximity to Aβ plaques in AD patients' brains. The meprin β-overexpressing mice showed elevated amyloidogenic APP processing detected with a newly generated neo-epitope-specific antibody. Furthermore, we observed elevated Aβ production from endogenous APP as well as AD-related behavior changes (hyperlocomotion and deficits in spatial memory). The novel mouse model as well as the established tools and methods will be helpful to further characterize APP cleavage and the impact of different Aβ species in future studies.
Insights
This study introduces a new mouse model overexpressing meprin β in astrocytes to investigate Alzheimer's disease (AD). The model mimics the production of N-terminally truncated amyloid-beta (Aβ) peptides, offering new insights into AD pathogenesis.
Area of Science:
- Neuroscience
- Molecular Biology
- Biochemistry
Background:
- Neurotoxic amyloid-beta (Aβ) peptides are implicated in Alzheimer's disease (AD) neurodegeneration.
- Current AD mouse models often fail to replicate the full spectrum of Aβ species found in human patients, particularly N-terminally truncated forms.
- Meprin β, an alternative β-secretase, produces these truncated Aβ peptides and is upregulated in AD brains.
Purpose of the Study:
- To develop a novel mouse model for studying N-terminally truncated Aβ peptides (Aβ2-x) by conditionally overexpressing meprin β in astrocytes.
- To investigate the role of meprin β-generated Aβ species in AD pathogenesis.
- To establish new tools for characterizing APP cleavage and Aβ impact.
Main Methods:
- Generation of a conditional meprin β-overexpressing mouse model in astrocytes.
- Utilized a novel neo-epitope-specific antibody to detect amyloid precursor protein (APP) processing.
- Assessed Aβ production from endogenous APP and evaluated AD-related behaviors.
Main Results:
- Meprin β overexpression led to elevated amyloidogenic APP processing.
- Increased production of Aβ peptides from endogenous APP was observed.
- Mice exhibited AD-related behavioral changes, including hyperlocomotion and spatial memory deficits.
Conclusions:
- The novel mouse model successfully replicates the production of Aβ2-x peptides, offering a more accurate representation of AD pathology.
- This model and associated tools will advance the study of APP cleavage and the specific impact of various Aβ species in AD.
- Further research using this model can elucidate the role of meprin β in AD and guide the development of targeted therapies.
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