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bioRxiv · 10.1101/2021.12.17.473115

Histone demethylase UTX regulates glioblastoma progression through affecting periostin expression

Abstract

The histone H3K27 demethylase UTX participates in regulating multiple cancer types. However, less is known about the UTX function in glioblastoma (GBM). This study aims to define the effect of UTX on GBM. GEPIA2 database analysis showed that UTX expression was significantly increased in GBM and inversely correlated with survival. Knockdown UTX inhibited GBM cell proliferation, migration, and invasion while promoting apoptosis. Moreover, knockdown UTX also hampered tumor growth in the heterotopic xenograft model. RNA-seq combined with qRT-PCR and ChIP-qPCR were used to identify the target genes. The results showed that the UTX-mediated genes were strongly associated with tumor progression and the extracellular environment. Protein-protein interaction analysis suggested that periostin (POSTN) interacted with most of the other UTX-mediated genes. POSTN supplement abolished the effect of UTX knockdown in GBM cells. Furthermore, silencing UTX exhibited similar antitumor effect in patient-derived glioblastoma stem-like cells, while UTX functions were partially restored after exposing POSTN. Our findings may reveal a new insight into the onset of gliomagenesis and progression, providing a promising therapeutic strategy for GBM treatment. Bullet PointsUTX correlates with survival in glioblastoma. Silencing UTX decreased the levels of H3K27 methylation in the POSTN gene, thereby suppressing POSTN expression. UTX-mediated POSTN expression is crucial for glioblastoma cell growth and tumorigenesis. O_LIUTX expression is increased in GBM and negatively correlated with survival. C_LIO_LIUTX knockdown influences proliferation and apoptosis in both GBM cells and GSCs. C_LIO_LIThe antitumor effect of UTX knockdown is achieved by suppressing POSTN expression. C_LI

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Luan, Y., Liu, Y., Xue, J., Wang, K., Ma, K., Lu, H., Chen, X., Zhang, Z.. 2021-12-19. Histone demethylase UTX regulates glioblastoma progression through affecting periostin expression. https://doi.org/10.1101/2021.12.17.473115

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