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Updated: Jun 18, 2026

Genome-wide Screen for miRNA Targets Using the MISSION Target ID Library
Published on: April 6, 2012
Targeting of integrin beta1 and kinesin 2alpha by microRNA 183
Guorong Li1, Coralia Luna, Jianming Qiu
1Department of Ophthalmology, Duke University, Durham, North Carolina 27710, USA.
Abstract:
MicroRNA 183 (miR-183) has been reported to inhibit tumor invasiveness and is believed to be involved in the development and function of ciliated neurosensory organs. We have recently found that expression of miR-183 increased after the induction of cellular senescence by exposure to H(2)O(2). To gain insight into the biological roles of miR-183 we investigated two potential novel targets: integrin beta1 (ITGB1) and kinesin 2alpha (KIF2A). miR-183 significantly decreased the expression of ITGB1 and KIF2A measured by Western blot. Targeting of the 3'-untranslated region (3'-UTR) of ITGB1 and KIF2A by miR-183 was confirmed by luciferase assay. Transfection with miR-183 led to a significant decrease in cell invasion and migration capacities of HeLa cells that could be rescued by expression of ITGB1 lacking the 3'-UTR. Although miR-183 had no effects on cell adhesion in HeLa cells, it significantly decreased adhesion to laminin, gelatin, and collagen type I in normal human diploid fibroblasts and human trabecular meshwork cells. These effects were also rescued by expression of ITGB1 lacking the 3'-UTR. Targeting of KIF2A by miR-183 resulted in some increase in the formation of cells with monopolar spindles in HeLa cells but not in human diploid fibroblast or human trabecular meshwork cells. The regulation of ITGB1 expression by miR-183 provides a new mechanism for the anti-metastatic role of miR-183 and suggests that this miRNA could influence the development and function in neurosensory organs, and contribute to functional alterations associated with cellular senescence in human diploid fibroblasts and human trabecular meshwork cells.
Insights
MicroRNA 183 (miR-183) inhibits cell invasion and migration by targeting integrin beta1 (ITGB1). This microRNA also affects cell adhesion and may play a role in neurosensory organ development and cellular senescence.
Area of Science:
- Molecular Biology
- Cell Biology
- Genetics
Background:
- MicroRNA 183 (miR-183) is known to inhibit tumor invasiveness.
- miR-183 is implicated in the development and function of ciliated neurosensory organs.
- miR-183 expression increases upon induction of cellular senescence by H2O2.
Purpose of the Study:
- To investigate the biological roles of miR-183.
- To identify and validate novel targets of miR-183.
- To understand the impact of miR-183 on cell invasion, migration, and adhesion.
Main Methods:
- Western blot analysis to measure protein expression of ITGB1 and KIF2A.
- Luciferase assay to confirm direct targeting of the 3'-UTR of ITGB1 and KIF2A by miR-183.
- Cell invasion, migration, and adhesion assays in HeLa, human diploid fibroblasts, and human trabecular meshwork cells.
Main Results:
- miR-183 significantly decreased the expression of Integrin beta1 (ITGB1) and Kinesin 2alpha (KIF2A).
- miR-183 transfection reduced cell invasion and migration in HeLa cells, effects rescued by ITGB1 expression lacking the 3'-UTR.
- miR-183 decreased cell adhesion to specific extracellular matrix components in fibroblasts and trabecular meshwork cells, also rescued by ITGB1 expression.
Conclusions:
- Regulation of ITGB1 by miR-183 offers a novel mechanism for its anti-metastatic function.
- miR-183 may influence neurosensory organ development and function.
- miR-183 contributes to functional alterations in cellular senescence.
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