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Updated: May 8, 2026

Microglia as a Surrogate Biosensor to Determine Nanoparticle Neurotoxicity
Published on: October 25, 2016
Amyloid-β-Induced Neurotoxicity Modulates miR-98 and miR-200 Expression in SH-SY5Y Cells: A Step Toward Alzheimer's
Ezgi Keske1, Ayyub Ebrahimi2,3, Özlem Sağlam Uçar4
1İstanbul Medeniyet University, Istanbul, Turkey.
Abstract:
Alzheimer's disease (AD) is a progressive neurodegenerative disorder characterized by abnormal protein accumulation, with no effective, non-invasive early diagnostic tools currently available. MicroRNAs (miRNAs), essential for neuronal survival and function, have been implicated in AD neuropathology. This study investigates the potential of miRNAs as biomarkers for AD by assessing the expression levels of miRNAs relevant to amyloid toxicity. An AD model was developed in SH-SY5Y human neuroblastoma cells with adequate Aβ42 expression to analyze the involvement of miRNAs in AD diagnosis. ELISA, MTT assays, and Congo red staining were utilized to quantify qualitative and quantitative amyloid formation. The expression of miRNAs and related genes, particularly those targeting APP and β-secretase, was measured using quantitative real-time PCR. Amyloid toxicity was successfully induced, and an increase in amyloid levels and significant changes in Alzheimer's related genes and targeted miRNAs were observed. Specifically, it was observed that miR-200a was upregulated and miR-98 was down-regulated in treated neuroblastoma cells. Notably, the altered expression patterns of these miRNAs showed a strong correlation with the pathological markers of AD, suggesting their potential as diagnostic indicators. Our findings enhance our understanding of AD mechanisms and offer insights into early diagnosis. Detecting AD in preclinical stages may enable earlier symptomatic intervention. In particular, dysregulation of certain miRNAs may play a role in neurodegenerative processes such as amyloid plaque formation in AD. miRNAs that respond to neurotoxic stimuli can be identified using in vitro models and confirmed by in vivo studies. These studies will help us understand both the development of noninvasive diagnostic tests and therapeutic approaches targeting miRNAs.
Insights
This study identifies specific microRNAs (miRNAs) as potential early biomarkers for Alzheimer's disease (AD). Changes in miR-200a and miR-98 levels correlate with amyloid toxicity, offering hope for non-invasive AD diagnosis.
Area of Science:
- Neuroscience
- Molecular Biology
- Biomarker Discovery
Background:
- Alzheimer's disease (AD) is a progressive neurodegenerative disorder lacking effective early diagnostic tools.
- MicroRNAs (miRNAs) are crucial for neuronal function and have been linked to AD neuropathology.
- Current diagnostic methods for AD are invasive and often detect the disease at later stages.
Purpose of the Study:
- To investigate the potential of specific miRNAs as non-invasive biomarkers for early Alzheimer's disease detection.
- To analyze the expression levels of miRNAs involved in amyloid toxicity in an AD cellular model.
- To explore the correlation between miRNA expression and Alzheimer's disease pathological markers.
Main Methods:
- Developed an Alzheimer's disease model using SH-SY5Y human neuroblastoma cells with Aβ42 expression.
- Quantified amyloid formation using ELISA, MTT assays, and Congo red staining.
- Measured miRNA and related gene expression, including those targeting APP and β-secretase, via quantitative real-time PCR.
Main Results:
- Successfully induced amyloid toxicity in the cellular model, observing increased amyloid levels.
- Detected significant changes in Alzheimer's-related genes and targeted miRNAs.
- Observed upregulation of miR-200a and downregulation of miR-98 in treated neuroblastoma cells, correlating with AD pathology.
Conclusions:
- Altered expression patterns of miR-200a and miR-98 show strong correlation with Alzheimer's disease pathological markers.
- These specific miRNAs hold potential as diagnostic indicators for early Alzheimer's disease detection.
- Findings contribute to understanding AD mechanisms and developing non-invasive diagnostic and therapeutic strategies targeting miRNAs.
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