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Updated: Jun 21, 2026

Genome-wide Screen for miRNA Targets Using the MISSION Target ID Library
Published on: April 6, 2012
MicroRNA-661, a c/EBPalpha target, inhibits metastatic tumor antigen 1 and regulates its functions
Sirigiri Divijendra Natha Reddy1, Suresh B Pakala, Kazufumi Ohshiro
1Department of Biochemistry and Molecular Biology and Institute of Coregulator Biology, The George Washington University Medical Center, Washington, District of Columbia 20037, USA.
Abstract:
MicroRNAs (miR) have been identified as posttranscriptional modifiers of target gene regulation and control the expression of gene products important in cancer progression. Here, we show that miR-661 inhibits the expression of metastatic tumor antigen 1 (MTA1), a widely up-regulated gene product in human cancer, by targeting the 3' untranslated region (UTR) of MTA1 mRNA. We found that endogenous miR-661 expression was positively regulated by the c/EBPalpha transcription factor, which is down-regulated during cancer progression. c/EBPalpha directly interacted with the miR-661 chromatin and bound to miR-661 putative promoter that contains a c/EBPalpha-consensus motif. In addition, we found that the level of MTA1 protein was progressively up-regulated, whereas that of miR-661 and its activator, c/EBPalpha, were down-regulated in a breast cancer progression model consisting of MCF-10A cell lines whose phenotypes ranged from noninvasive to highly invasive. c/EBPalpha expression in breast cancer cells resulted in increased miR-661 expression and reduced MTA1 3'UTR-luciferase activity and MTA1 protein level. We also provide evidence that the introduction of miR-661 inhibited the motility, invasiveness, anchorage-independent growth, and tumorigenicity of invasive breast cancer cells. We believe our findings show for the first time that c/EBPalpha regulates the level of miR-661 and in turn modifies the functions of the miR661-MTA1 pathway in human cancer cells. Based on these findings, we suggest that miR-661 be further investigated for therapeutic use in down-regulating the expression of MTA1 in cancer cells.
Insights
MicroRNAs (miR-661) inhibit cancer progression by targeting metastatic tumor antigen 1 (MTA1). The transcription factor c/EBPalpha activates miR-661, suppressing MTA1 and reducing breast cancer cell invasiveness.
Area of Science:
- Molecular Biology
- Cancer Research
- Gene Regulation
Background:
- MicroRNAs (miRNAs) are key posttranscriptional regulators in cancer progression.
- Metastatic tumor antigen 1 (MTA1) is frequently upregulated in human cancers.
- The transcription factor c/EBPalpha plays a role in cancer development.
Purpose of the Study:
- To investigate the regulatory relationship between miR-661, MTA1, and c/EBPalpha in breast cancer.
- To determine the functional impact of miR-661 on cancer cell behavior.
Main Methods:
- Luciferase reporter assays to assess MTA1 3'UTR activity.
- Western blotting to measure protein levels of MTA1 and c/EBPalpha.
- Cell-based assays to evaluate breast cancer cell motility, invasiveness, and tumorigenicity.
Main Results:
- miR-661 directly targets the 3'UTR of MTA1 mRNA, inhibiting its expression.
- c/EBPalpha positively regulates endogenous miR-661 expression by binding to its promoter.
- Downregulation of c/EBPalpha and miR-661 correlates with increased MTA1 and invasiveness in a breast cancer progression model.
- Overexpression of c/EBPalpha or miR-661 reduced MTA1 levels and inhibited cancer cell invasiveness and tumorigenicity.
Conclusions:
- c/EBPalpha acts as a positive regulator of miR-661, which in turn suppresses MTA1 expression.
- The miR-661/MTA1 pathway is a critical regulator of breast cancer cell functions.
- miR-661 holds potential as a therapeutic agent for downregulating MTA1 in cancer treatment.
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