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Updated: Sep 21, 2025

Analysis of Combinatorial miRNA Treatments to Regulate Cell Cycle and Angiogenesis
Published on: March 30, 2019
Role of MicroRNAs in acceleration of vascular endothelial senescence
Kensuke Toyama1,2,3, Joshua M Spin2,3, Alicia C Deng2,3
1Department of Pharmacology, Ehime University Graduate School of Medicine, Ehime, Japan.
Backgrounds:
Many factors are involved in cellular aging, and senescence induction requires complex regulation of various signaling networks and processes. Specifically, in the area of aging-related vascular cognitive impairment, laboratory-based findings have not yet yielded agents of practical use for clinical settings. One possible reason is that the physiologic elements of aging have been insufficiently considered. We sought to establish techniques to better model cellular aging using modulation of microRNAs, aiming to identify key microRNAs capable of fine-tuning aging-associated genes, and thereby regulating the senescence of vascular endothelial cells.
Methods:
We utilized expression microRNA arrays to evaluate control and senescent vascular endothelial cells in order to identify testable candidates. Bioinformatic analysis was used to select key microRNAs. These candidates were then modulated in vitro using microRNA mimics and inhibitors in endothelial cells, and senescence-associated gene expression patterns were evaluated by qPCR.
Results:
Seventeen microRNAs were found to be significantly increased more than 2-fold in senescent cells. Of those, bioinformatic analysis concluded that miR-181a-5p, miR-30a-5p, miR-30a-3p, miR-100-5p, miR-21-5p, and miR-382-5p were likely associated with regulation of cellular senescence. We evaluated the potential targets of these six microRNAs by comparing them with cell-cycling and apoptosis-related genes from published mRNA transcriptional array data from aged tissues, and found that miR-181a-5p, miR-30a-5p and miR-30a-3p were enriched in overlapping targets compared with the other candidates. Modulation of these microRNAs in vascular endothelial cells revealed that over-expression of miR-30a-5p, and inhibition of both miR-30a-3p and miR-181a-5p, induced senescence.
Conclusion:
miR-181a-5p, miR-30a-5p and miR-30a-3p likely contribute to aging-associated vascular endothelial cell senescence.
Insights
Specific microRNAs, including miR-181a-5p, miR-30a-5p, and miR-30a-3p, are identified as key regulators of cellular senescence in vascular endothelial cells, offering potential targets for aging-related vascular cognitive impairment.
Area of Science:
- Vascular Biology
- Cellular Aging
- Molecular Biology
Background:
- Cellular aging involves complex signaling, with limited clinical agents for vascular cognitive impairment.
- Physiological aspects of aging are often underconsidered in research.
- MicroRNAs (miRNAs) offer a potential avenue for modeling and regulating cellular senescence.
Purpose of the Study:
- To develop improved models of cellular aging.
- To identify key microRNAs regulating aging-associated genes.
- To investigate the role of microRNAs in vascular endothelial cell senescence.
Main Methods:
- MicroRNA expression arrays used to compare control and senescent vascular endothelial cells.
- Bioinformatic analysis to identify candidate microRNAs.
- In vitro modulation of candidate microRNAs (mimics/inhibitors) and assessment of senescence-associated gene expression via qPCR.
Main Results:
- Seventeen microRNAs showed a >2-fold increase in senescent cells.
- miR-181a-5p, miR-30a-5p, miR-30a-3p, miR-100-5p, miR-21-5p, and miR-382-5p identified as likely senescence regulators.
- miR-181a-5p, miR-30a-5p, and miR-30a-3p showed enriched overlapping targets with cell-cycling/apoptosis genes; their modulation induced senescence.
Conclusions:
- miR-181a-5p, miR-30a-5p, and miR-30a-3p are implicated in aging-associated vascular endothelial cell senescence.
- These microRNAs represent potential therapeutic targets for age-related vascular conditions.
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