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Updated: Sep 18, 2025

In Vivo Inhibition of MicroRNA to Decrease Tumor Growth in Mice
Published on: August 23, 2019
miR-7-5p and Importin-7 Regulate the p53 Dynamics and Stability in Malignant and Benign Thyroid Cells
Abeer Al-Abdallah1, Iman Jahanbani2, Bashayer Al-Shammari2
1Pathology Department, College of Medicine, Kuwait University, P.O. Box 24923, Safat 13110, Kuwait.
Abstract:
Thyroid carcinogenesis has multiple hallmarks, including evasion of tumor suppressors. Reactivation of wild-type p53 function is the ultimate goal in cancer therapy, which requires an understanding of the p53 suppression mechanism specific to the cancer type. MiR-7-5p and IPO7 are implicated in the pathogenesis of several human diseases. This work aims to investigate the role of miR-7-5p and IPO7 in p53 regulation in papillary thyroid cancer (PTC) cells. Primary cultured thyroid cells and FFPE thyroid tissues from PTC and benign cases were used. Functional experiments were performed by transfection with IPO7 siRNA or miR-7-5p mimic/inhibitor, followed by apoptosis and luciferase reporter assays, immunoblot assays, and RT-PCR. The expression and subcellular localization of IPO7, p53, MDM2, and ribosomal proteins (RPL11 and RPL5) were studied by immunofluorescence staining and confocal microscopy. The results show that IPO7 is overexpressed in PTC and regulated by miR-7-5p. Modulation of IPO7 expression in cultured thyroid cells altered the nucleocytoplasmic shuttling of p53, MDM2, RPL11, and RPL5, in addition to the p53 protein level and activity. The expression pattern of IPO7, p53, and MDM2 in cultured thyroid cells and clinical thyroid tissue specimens confirmed the association between IPO7 overexpression and reduced p53 stability in PTC. In conclusion, the data here show that p53 level and activity are differentially controlled in malignant and benign thyroid cells through miR-7-5P/IPO7-mediated regulation of RP-MDM2-p53 nucleocytoplasmic trafficking. In PTC, downregulation of miR-7-5p with consequent overexpression of IPO7 might be a protective mechanism used by cancer cells to evade p53 growth suppression during carcinogenesis.
Insights
Papillary thyroid cancer cells evade p53 tumor suppression by downregulating miR-7-5p, leading to IPO7 overexpression. This disrupts p53’s nuclear transport, promoting cancer growth.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Thyroid carcinogenesis involves evading tumor suppressors like p53.
- Understanding p53 suppression mechanisms is crucial for cancer therapy.
- MiR-7-5p and IPO7 are implicated in various human diseases.
Purpose of the Study:
- Investigate the roles of miR-7-5p and IPO7 in regulating p53 in papillary thyroid cancer (PTC).
- Elucidate the mechanism of p53 suppression in PTC cells.
Main Methods:
- Utilized primary cultured thyroid cells and PTC tissue specimens.
- Performed functional experiments including siRNA/mimic/inhibitor transfections, apoptosis assays, luciferase reporter assays, immunoblotting, and RT-PCR.
- Studied protein expression and subcellular localization via immunofluorescence and confocal microscopy.
Main Results:
- IPO7 is overexpressed in PTC and regulated by miR-7-5p.
- Modulating IPO7 affected the nucleocytoplasmic shuttling of p53, MDM2, RPL11, and RPL5, altering p53 levels and activity.
- IPO7 overexpression correlated with reduced p53 stability in PTC.
Conclusions:
- p53 activity is differentially controlled in malignant and benign thyroid cells via miR-7-5P/IPO7-mediated regulation of nucleocytoplasmic trafficking.
- In PTC, miR-7-5p downregulation and subsequent IPO7 overexpression may serve as a cancer cell mechanism to evade p53-mediated growth suppression.
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