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Computational identification and experimental validation of microRNAs binding to the Alzheimer-related gene ADAM10
Regina Augustin1, Kristina Endres, Sven Reinhardt
1Helmholtz Centre Munich, German Research Centre for Environmental Health (GmbH) and Technical University Munich, Institute of Developmental Genetics, Ingolstädter Landstraße, 1, 85764, Munich-Neuherberg, Germany.
Background:
MicroRNAs (miRNAs) are post-transcriptional regulators involved in numerous biological processes including the pathogenesis of Alzheimer's disease (AD). A key gene of AD, ADAM10, controls the proteolytic processing of APP and the formation of the amyloid plaques and is known to be regulated by miRNA in hepatic cancer cell lines. To predict miRNAs regulating ADAM10 expression concerning AD, we developed a computational approach.
Methods:
MiRNA binding sites in the human ADAM10 3' untranslated region were predicted using the RNA22, RNAhybrid and miRanda programs and ranked by specific selection criteria with respect to AD such as differential regulation in AD patients and tissue-specific expression. Furthermore, target genes of miR-103, miR-107 and miR-1306 were derived from six publicly available miRNA target site prediction databases. Only target genes predicted in at least four out of six databases in the case of miR-103 and miR-107 were compared to genes listed in the AlzGene database including genes possibly involved in AD. In addition, the target genes were used for Gene Ontology analysis and literature mining. Finally, we used a luciferase assay to verify the potential effect of these three miRNAs on ADAM10 3'UTR in SH-SY5Y cells.
Results:
Eleven miRNAs were selected, which have evolutionary conserved binding sites. Three of them (miR-103, miR-107, miR-1306) were further analysed as they are linked to AD and most strictly conserved between different species. Predicted target genes of miR-103 (p-value = 0.0065) and miR-107 (p-value = 0.0009) showed significant overlap with the AlzGene database except for miR-1306. Interactions between miR-103 and miR-107 to genes were revealed playing a role in processes leading to AD. ADAM10 expression in the reporter assay was reduced by miR-1306 (28%), miR-103 (45%) and miR-107 (52%).
Conclusions:
Our approach shows the requirement of incorporating specific, disease-associated selection criteria into the prediction process to reduce the amount of false positive predictions. In summary, our method identified three miRNAs strongly suggested to be involved in AD, which possibly regulate ADAM10 expression and hence offer possibilities for the development of therapeutic treatments of AD.
Insights
This study identified three microRNAs (miRNAs) that regulate ADAM10 expression, a key gene in Alzheimer's disease (AD) pathogenesis. These findings offer potential new therapeutic targets for AD treatment.
Area of Science:
- Molecular Biology
- Neuroscience
- Genetics
Background:
- MicroRNAs (miRNAs) are crucial post-transcriptional regulators implicated in biological processes, including Alzheimer's disease (AD) pathogenesis.
- ADAM10, a key gene in AD, influences amyloid plaque formation and is regulated by miRNAs in other cell types.
- A computational approach was developed to predict miRNAs targeting ADAM10 in the context of AD.
Purpose of the Study:
- To computationally predict microRNAs (miRNAs) that regulate ADAM10 expression relevant to Alzheimer's disease (AD).
- To identify specific miRNAs and their target genes involved in AD-related pathways.
- To experimentally validate the regulatory effect of selected miRNAs on ADAM10.
Main Methods:
- Predicted miRNA binding sites in the ADAM10 3' UTR using RNA22, RNAhybrid, and miRanda, applying AD-specific selection criteria.
- Identified target genes for miR-103, miR-107, and miR-1306 from six databases and compared them with the AlzGene database.
- Utilized Gene Ontology analysis, literature mining, and luciferase assays to validate miRNA-ADAM10 interactions in SH-SY5Y cells.
Main Results:
- Eleven evolutionarily conserved miRNAs targeting ADAM10 were identified; three (miR-103, miR-107, miR-1306) were prioritized due to AD relevance and conservation.
- miR-103 and miR-107 target genes showed significant overlap with AD-associated genes in the AlzGene database.
- Luciferase assays confirmed that miR-1306, miR-103, and miR-107 significantly reduced ADAM10 expression by 28%, 45%, and 52%, respectively.
Conclusions:
- The study highlights the importance of disease-specific criteria in miRNA prediction to minimize false positives.
- Three miRNAs (miR-103, miR-107, miR-1306) were identified as strong candidates involved in AD pathogenesis by potentially regulating ADAM10.
- These findings suggest novel therapeutic avenues for Alzheimer's disease by targeting specific miRNA-ADAM10 interactions.
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