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Updated: Jul 2, 2025

In Vivo Inhibition of MicroRNA to Decrease Tumor Growth in Mice
Published on: August 23, 2019
miR-939-3p induces sarcoma proliferation and poor prognosis via suppressing BATF2
Wanwen Xu1, Yinghui Huang2, Zengjie Lei3
1Wuhan Third Hospital (Tongren Hospital of Wuhan University), Wuhan, Hubei, China.
Background:
Sarcoma is a rare and aggressive malignancy with poor prognosis, in which oncogene activation and tumor suppressor inactivation are involved. Accumulated studies suggested basic leucine zipper transcription factor ATF-like 2 (BATF2) as a candidate tumor suppressor, but its specific role and mechanism in sarcoma remain unclear.
Methods:
The expression levels of BATF2 and miR-939-3p were evaluated by using human sarcoma samples, cell lines and xenograft mouse models. Bioinformatics analysis, qPCR, Western blot, cell proliferation assay, overexpression plasmid construction, point mutation and dual luciferase reporter assay were utilized to investigate the role and mechanism of miR-939-3p in sarcoma.
Results:
In this study, we demonstrated that the expression of BATF2 was downregulated in human sarcoma tissues and cell lines. The downregulation of BATF2 was negatively associated with the prognosis of sarcoma patients. Subsequent bioinformatic prediction and experimental validations showed that BATF2 expression was reduced by microRNA (miR)-939-3p mimic and increased by miR-939-3p inhibitor. Additionally, miR-939-3p was upregulated in sarcoma tissues and cells, correlating with a poor prognosis of sarcoma patients. Moreover, miR-939-3p overexpression suppressed sarcoma cell proliferation, which was significantly attenuated by the restoration of BATF2, while siRNA-mediated knockdown of BATF2 aggravated the miR-939-3p-induced promotion of sarcoma cell proliferation. Further computational algorithms and dual-luciferase reporter assays demonstrated that miR-939-3p repressed BATF2 expression via directly binding to its 3' untranslated region (3' UTR).
Conclusion:
Collectively, these findings identified miR-939-3p as a novel regulator of BATF2, as well as a prognostic biomarker in sarcoma, and revealed that suppressing miR-939-3p or inducing BATF2 expression may serve as a promising therapeutic strategy against sarcoma.
Insights
MicroRNA-939-3p promotes sarcoma progression by downregulating the tumor suppressor basic leucine zipper transcription factor ATF-like 2 (BATF2). Inhibiting miR-939-3p or increasing BATF2 may offer new sarcoma treatment strategies.
Area of Science:
- Oncology
- Molecular Biology
- Gene Regulation
Background:
- Sarcoma is a rare, aggressive cancer with poor prognosis.
- Oncogene activation and tumor suppressor inactivation are key factors in sarcoma development.
- Basic leucine zipper transcription factor ATF-like 2 (BATF2) is a potential tumor suppressor, but its role in sarcoma is not fully understood.
Purpose of the Study:
- To investigate the role and mechanism of microRNA (miR)-939-3p in sarcoma.
- To determine the relationship between miR-939-3p, BATF2, and sarcoma progression.
- To evaluate miR-939-3p and BATF2 as potential prognostic biomarkers and therapeutic targets in sarcoma.
Main Methods:
- Analysis of BATF2 and miR-939-3p expression in human sarcoma tissues and cell lines.
- Utilized bioinformatics, qPCR, Western blot, and cell proliferation assays.
- Employed overexpression, knockdown, point mutation, and dual-luciferase reporter assays to elucidate regulatory mechanisms.
Main Results:
- BATF2 expression was significantly downregulated in sarcoma tissues and cell lines, correlating with poor patient prognosis.
- miR-939-3p was upregulated in sarcoma and negatively regulated BATF2 expression by directly binding to its 3' UTR.
- miR-939-3p overexpression promoted sarcoma cell proliferation, while its inhibition or BATF2 restoration suppressed proliferation.
Conclusions:
- miR-939-3p acts as an oncogenic microRNA in sarcoma by suppressing the tumor suppressor BATF2.
- miR-939-3p is a novel prognostic biomarker for sarcoma.
- Targeting miR-939-3p or enhancing BATF2 expression presents a potential therapeutic strategy for sarcoma treatment.
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