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KLF14 inhibits tumor progression via FOSL1 in glioma
Xiaohua Wang1,2, Xinjuan Qu3, Xuelai Liu3
1Guangzhou University of Chinese Medicine, Guangzhou, Guangdong Province, 510006, China.
Background:
Glioma, the most frequent central nervous system malignancy, is often promoted by the overexpression of Fos-like antigen 1 (FOSL1). However, the regulation of FOSL1 remains unexplored. The present study aimed to investigate the regulatory mechanism of FOSL1 to identify potential therapeutic targets for glioblastoma.
Methods:
This study's initial investigation utilized dual-luciferase reporter gene assays and quantitative polymerase chain reaction (qPCR) assays to establish that Kruppel-like factor 14 (KLF14) inhibits the transcription of FOSL1. Subsequent immunohistochemistry and western blotting (WB) assays on glioma tissues confirmed a negative association between FOSL1 and KLF14. This study generated KLF14 knockdown cells and double knockdown cells of KLF14 and FOSL1 and further assessed cell growth through various experimental methods. The impact of KLF14 on tumor cell migration via FOSL1 was determined using qPCR and WB assays. A xenograft tumor model was utilized to verify tumor growth suppression by KLF14.
Results:
The present study demonstrated that KLF14 restrains FOSL1 transcription and is inversely correlated with FOSL1 in glioma tissues. KLF14 overexpression was found to counteract FOSL1's effect on cell migration and epithelial-to-mesenchymal transition in glioma cells, which coincided with decreased Snail2 and cluster of differentiation 44 (CD44) expressions. Further, KLF14 overexpression was shown to hinder tumor progression in vivo.
Conclusion:
This study highlights that FOSL1 is negatively regulated by KLF14 in glioblastoma and suggests that KLF14 overexpression can mitigate tumor growth by inhibiting FOSL1, thus identifying KLF14 as a novel molecular target for treating glioblastoma. Further research into the interplay and regulatory dynamics between KLF14 and FOSL1 under varying stress conditions can enhance the precision of glioblastoma treatment.
Insights
Kruppel-like factor 14 (KLF14) inhibits Fos-like antigen 1 (FOSL1) transcription in glioblastoma. KLF14 overexpression suppresses tumor growth by downregulating FOSL1, presenting KLF14 as a potential glioblastoma therapeutic target.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Glioma is a common brain cancer often driven by Fos-like antigen 1 (FOSL1) overexpression.
- The regulatory mechanisms of FOSL1 in glioma remain largely unknown.
- Identifying FOSL1 regulators is crucial for developing new glioblastoma therapies.
Purpose of the Study:
- To investigate the regulatory mechanism of FOSL1 in glioblastoma.
- To determine the role of Kruppel-like factor 14 (KLF14) in FOSL1 regulation.
- To explore KLF14 as a potential therapeutic target for glioblastoma.
Main Methods:
- Dual-luciferase reporter and qPCR assays to assess KLF14's effect on FOSL1 transcription.
- Immunohistochemistry and Western blotting on glioma tissues to analyze FOSL1/KLF14 association.
- Cell growth, migration, and epithelial-to-mesenchymal transition assays in KLF14 knockdown cells.
- In vivo xenograft tumor models to evaluate KLF14's impact on tumor progression.
Main Results:
- KLF14 was confirmed to inhibit FOSL1 transcription and inversely correlate with FOSL1 in glioma tissues.
- KLF14 overexpression counteracted FOSL1-induced cell migration and epithelial-to-mesenchymal transition.
- KLF14 overexpression led to decreased Snail2 and CD44 expression and inhibited tumor progression in vivo.
Conclusions:
- FOSL1 is negatively regulated by KLF14 in glioblastoma.
- KLF14 overexpression mitigates glioblastoma growth by inhibiting FOSL1.
- KLF14 represents a novel molecular target for glioblastoma treatment, warranting further investigation into its regulatory dynamics.
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