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Updated: Oct 26, 2025

In Vivo Inhibition of MicroRNA to Decrease Tumor Growth in Mice
Published on: August 23, 2019
IGF2BP2 knockdown suppresses thyroid cancer progression by reducing the expression of long non-coding RNA HAGLR
Liangpeng Dong1, Zushi Geng2, Zheng Liu2
1Department of Thyroid Surgery, The first Affiliated Hospital of Zhengzhou University, Zhengzhou 450052, Henan, China; The first Affiliated Hospital of Xinxiang Medical University, Xinxiang 453100, Henan, China.
Background:
N6-methyladenosine (m6A), a common internal modification on RNAs, has been found to be closely linked with RNA biosynthesis/metabolism and cancer development. In this text, the roles and molecular mechanisms of m6A-bind protein IGF2BP2 in the development of thyroid cancer (TC) were investigated in vitro.
Methods:
IGF2BP2 and lncRNA HAGLR were screened out through multiple public databases such as TCGA, Ualcan, POSTAR2, Starbase, and GEPIA. Cell proliferative, migratory and invasive abilities were assessed by CCK-8, Transwell migration and invasion assays, respectively. Cell cycle distribution and cell apoptotic patterns were measured by flow cytometry. The interaction between HAGLR and IGF2BP2 was examined by RIP, RNA pull-down and luciferase assays and bioinformatics analysis. The effect of IGF2BP2 knockdown on the m6A level of HAGLR was explored by meRIP assay.
Results:
IGF2BP2 was highly expressed in TC tumor tissues. IGF2BP2 knockdown weakened cell proliferative, migratory, and invasive abilities, and induced cell cycle arrest and cell apoptosis in TC cells. LncRNA HAGLR expression was markedly upregulated and positively associated with IGF2BP2 expression in TC tissues. IGF2BP2 knockdown reduced HAGLR expression and transcript stability in TC cells. IGF2BP2 regulated HAGLR expression in an m6A-dependent manner. HAGLR overexpression weakened the effects of IGF2BP2 loss on cell proliferation, migration, invasion, apoptosis, and cell cycle progression in TC cells.
Conclusion:
IGF2BP2 loss inhibited cell proliferation, migration and invasion, and induced cell apoptosis and cell cycle arrest by down-regulating HAGLR expression in an m6A-dependent manner in TC cells, providing some potential diagnostic and therapeutic targets for TC.
Insights
Investigating the RNA-binding protein IGF2BP2 in thyroid cancer (TC), this study found that reducing IGF2BP2 levels inhibits cancer cell growth and spread. This occurs by decreasing the expression of lncRNA HAGLR in an m6A-dependent manner.
Area of Science:
- Oncology
- Molecular Biology
- Epigenetics
Background:
- N6-methyladenosine (m6A) modifications are crucial in RNA metabolism and cancer development.
- The role of the m6A-binding protein IGF2BP2 in thyroid cancer (TC) pathogenesis is not fully understood.
Purpose of the Study:
- To investigate the functions and molecular mechanisms of IGF2BP2 in thyroid cancer development.
- To explore the relationship between IGF2BP2, lncRNA HAGLR, and m6A modification in TC.
Main Methods:
- Bioinformatic analysis of public databases (TCGA, Ualcan, etc.) to identify IGF2BP2 and HAGLR.
- In vitro assays (CCK-8, Transwell, flow cytometry) to assess cell proliferation, migration, invasion, cell cycle, and apoptosis.
- Molecular assays (RIP, RNA pull-down, luciferase, meRIP) to confirm interactions and m6A-dependent regulation.
Main Results:
- IGF2BP2 is highly expressed in TC tissues and promotes cell proliferation, migration, and invasion.
- IGF2BP2 knockdown reduces HAGLR expression and stability, impacting cancer cell behavior.
- IGF2BP2 regulates HAGLR expression through an m6A-dependent mechanism, with HAGLR overexpression partially rescuing IGF2BP2 loss effects.
Conclusions:
- IGF2BP2 loss inhibits TC cell proliferation, migration, and invasion by downregulating HAGLR via m6A modification.
- IGF2BP2 and HAGLR represent potential diagnostic and therapeutic targets for thyroid cancer.
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