Related Experiment Video
Updated: Jan 1, 2026

Imaging the Intracellular Trafficking of APP with Photoactivatable GFP
Published on: October 17, 2015
miR-16-5p and miR-19b-3p prevent amyloid β-induced injury by targeting BACE1 in SH-SY5Y cells
Nan Zhang1, Wei-Wei Li2, Chun-Mei Lv3
1Departments of Geriatrics.
Purpose:
Alzheimer's disease is the most common neurodegenerative disease, characterized by accumulation of amyloid β peptides. MicroRNAs have been identified as significant regulators and therapeutic targets of Alzheimer's disease. However, the roles of miR-16-5p and miR-19b-3p and their mechanisms in Alzheimer's disease progression remain largely unknown.
Materials And Methods:
Amyloid β-treated SH-SY5Y cells were used to study Alzheimer's disease progression in vitro. Transfection was conducted into SH-SY5Y cells using Lipofectamine 2000. The expression levels of miR-16-5p, miR-19b-3p and beta-site amyloid precursor protein cleaving enzyme 1 (BACE1) were measured by quantitative real-time PCR or western blot, respectively. Cell viability and apoptosis were detected in amyloid β-treated SH-SY5Y cells by MTT or flow cytometry, respectively. The interaction between BACE1 and miR-16-5p or miR-19b-3p was explored by luciferase reporter and RNA immunoprecipitation analyses.
Results:
The expression levels of miR-16-5p and miR-19b-3p were reduced but BACE1 protein expression was enhanced in SH-SY5Y cells after treatment of amyloid β. Overexpression of miR-16-5p or miR-19b-3p attenuated amyloid β-induced viability inhibition and apoptosis promotion in SH-SY5Y cells, while their knockdown exacerbated amyloid β-induced injury. BACE1 was confirmed as a target of miR-16-5p and miR-19b-3p and its overexpression aggravated amyloid β-induced loss of viability and production of apoptosis, while its depletion caused an opposite effect. Moreover, upregulation of BACE1 alleviated the regulatory effects of miR-16-5p and miR-19b-3p on amyloid β-induced injury.
Conclusion:
MiR-16-5p and miR-19b-3p relieved amyloid β-induced injury by targeting BACE1 in SH-SY5Y cells, indicating miR-16-5p and miR-19b-3p as protective agents for treatment of Alzheimer's disease.
Insights
MicroRNAs miR-16-5p and miR-19b-3p protect against amyloid-beta induced injury in Alzheimer's disease models by targeting BACE1. These microRNAs show potential as therapeutic agents for Alzheimer's disease.
Area of Science:
- Neuroscience
- Molecular Biology
- Genetics
Background:
- Alzheimer's disease (AD) is a leading neurodegenerative disorder characterized by amyloid-beta (Aβ) peptide accumulation.
- MicroRNAs (miRNAs) are key regulators in AD pathogenesis, yet the specific roles of miR-16-5p and miR-19b-3p remain unclear.
Purpose of the Study:
- To investigate the roles and mechanisms of miR-16-5p and miR-19b-3p in Alzheimer's disease progression.
- To determine if these miRNAs target beta-site amyloid precursor protein cleaving enzyme 1 (BACE1).
Main Methods:
- Utilized amyloid-beta treated SH-SY5Y cells to model AD in vitro.
- Assessed miRNA and BACE1 expression, cell viability, and apoptosis using qPCR, Western blot, MTT assays, and flow cytometry.
- Employed luciferase reporter and RNA immunoprecipitation assays to confirm the interaction between miRNAs and BACE1.
Main Results:
- Amyloid-beta treatment reduced miR-16-5p and miR-19b-3p levels while increasing BACE1 expression.
- Overexpression of miR-16-5p or miR-19b-3p protected against amyloid-beta induced cell damage and apoptosis.
- BACE1 was confirmed as a direct target of miR-16-5p and miR-19b-3p, mediating amyloid-beta induced cellular injury.
Conclusions:
- MiR-16-5p and miR-19b-3p exert protective effects against amyloid-beta induced cellular damage in an Alzheimer's disease model.
- These miRNAs target BACE1, suggesting their potential as therapeutic agents for Alzheimer's disease treatment.
More Related Videos
06:40Quantitative Measurement of γ-Secretase-mediated Amyloid Precursor Protein and Notch Cleavage in Cell-based Luciferase Reporter Assay Platforms
Published on: January 25, 2018
09:33Quantitative 3D In Silico Modeling q3DISM of Cerebral Amyloid-beta Phagocytosis in Rodent Models of Alzheimer's Disease
Published on: December 26, 2016