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Harnessing the Power of MicroRNA Cargoes in Small Extracellular Vesicles Released from Fresh-Frozen Human Brain Sections
Published on: November 8, 2024
Amyloid precursor protein derivatives differentially alter the microRNA cargo of astrocyte-derived extracellular
Aimee J Chu1, Anna Erlandsson2, Joanna M Williams1
1Department of Anatomy, University of Otago, Dunedin 9016, New Zealand.
Abstract:
Alterations to the protein and microRNA cargo of extracellular vesicles (EVs) occur in Alzheimer's disease (AD) and may contribute to disease progression. We previously showed that ingestion of amyloid-beta (Aβ) by both murine and human astrocytes leads to alterations to the protein cargo of EVs that induce significant neuronal impairment and apoptosis. Here, we hypothesised that pathological changes to the microRNA cargo of astrocyte-derived EVs (ADEVs) would also occur following exposure of astrocytes to Aβ, whereas treatment of astrocytes with the neuroprotective protein secreted amyloid precursor protein-alpha (sAPPα) would induce neuroprotective changes in microRNA expression in ADEVs. Primary murine astrocytes were treated with vehicle, 0.1 μM Aβ protofibrils (AβPF), 1 nM sAPPα, or 1 nM sAPPα in conjunction with 0.1 μM AβPF (sAPPα + AβPF). Differentially expressed microRNA in ADEVs were detected by RT-qPCR using highly sensitive TaqMan Advanced microRNA arrays representing 168 neurodegeneration-associated microRNA. ADEVs from AβPF-exposed astrocytes contained significantly higher amounts of let-7c-5p, miR-29a-3p and miR-34a-5p, while miR-99b-5p and miR-181d-5p were significantly increased in ADEVs from sAPPα- and sAPPα + AβPF-treated astrocytes, respectively. Bioinformatic analysis revealed that gene targets of microRNA upregulated in ADEVs following astrocytic exposure to either AβPF or sAPPα + AβPF were enriched in numerous pathways with known links to AD pathology, with gene targets of the sAPPα + AβPF group also enriched in immune system-related pathways. In contrast, gene targets of miR-99b-5p are known to directly target pathways that are involved in AD, suggesting that ADEVs secreted by sAPPα-treated astrocytes have neuroprotective potential.
Insights
Alzheimer's disease (AD) involves changes in astrocyte-derived extracellular vesicles (EVs). Exposure to amyloid-beta (Aβ) alters microRNA cargo, while sAPPα treatment may offer neuroprotection via specific microRNAs in EVs.
Area of Science:
- Neuroscience
- Molecular Biology
- Cell Biology
Background:
- Extracellular vesicles (EVs) play a role in intercellular communication.
- Alterations in the protein and microRNA cargo of EVs are implicated in Alzheimer's disease (AD) pathogenesis.
- Previous research demonstrated that astrocyte-derived EVs (ADEVs) exposed to amyloid-beta (Aβ) cause neuronal impairment.
Purpose of the Study:
- To investigate microRNA cargo changes in ADEVs following astrocyte exposure to Aβ.
- To determine if sAPPα treatment induces neuroprotective microRNA changes in ADEVs.
- To explore the potential of sAPPα-modified ADEVs in AD therapeutics.
Main Methods:
- Primary murine astrocytes were treated with vehicle, Aβ protofibrils (AβPF), sAPPα, or a combination of sAPPα and AβPF.
- Differentially expressed microRNAs in ADEVs were identified using RT-qPCR with TaqMan Advanced microRNA arrays.
- Bioinformatic analysis was performed to identify gene targets and associated pathways of dysregulated microRNAs.
Main Results:
- ADEVs from AβPF-treated astrocytes showed increased levels of let-7c-5p, miR-29a-3p, and miR-34a-5p.
- ADEVs from sAPPα- and sAPPα + AβPF-treated astrocytes exhibited increased levels of miR-99b-5p and miR-181d-5p, respectively.
- Bioinformatic analysis linked upregulated microRNA targets to AD-related pathways, with sAPPα + AβPF also enriched in immune pathways.
Conclusions:
- Aβ exposure alters microRNA cargo in ADEVs, potentially contributing to AD pathology.
- sAPPα treatment, particularly in combination with Aβ, modifies ADEV microRNA cargo.
- miR-99b-5p, upregulated by sAPPα treatment, targets AD-relevant pathways, suggesting neuroprotective potential for ADEVs.
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