Chao He, Wenying Peng, Xuyue Jia, Xiaowen Zhang, Yufei Liang
tlooto Summary
HexB‐AS1 repressed ferroptosis in a miR‐671‐5p/SPTBN2‐dependent manner in epithelial ovarian cancer, thereby facilitating the progression of ovarian cancer, which might be a therapeutic target for treating ovarian cancer.
Abstract
Epithelial ovarian cancer has the characteristics of high malignancy and poor survival outcomes. Long non‐coding RNAs (lncRNAs) can mediate the biological function through regulating the expression of miRNA or protein in cancers. This study investigated the expression, function, and potential mechanism of lncRNA HOXB‐AS1 in epithelial ovarian cancer. The levels of HOXB‐AS1, miR‐671‐5p, and SPTBN2 mRNA in tissue samples and cells were measured by RT‐qPCR after extraction of total RNA. The correlations between HOXB‐AS1, miR‐671‐5p, and SPTBN2 mRNA were analyzed by Pearson's correlation coefficients. Cellular Fe2+ and ROS contents were measured by a Cell Ferrous Iron Colorimetric Assay Kit and a Reactive Oxygen Species assay kit. SPTBN2's downstream effectors SLC7A11 and GPX4 were measured by Western blot assay. The changes in cell viability, migration abilities, and invasion capacities were analyzed using CCK‐8 and Transwell assays. HOXB‐AS1 expression was upregulated in epithelial ovarian cancer and correlated with the FIGO stage. The decreased miR‐671‐5p and increased SPTBN2 mRNA expression were observed in epithelial ovarian cancer tissues and cells. Silencing of HOXB‐AS1 inhibited cellular viability and invasion behaviors by promoting Fe2+ and ROS levels. HOXB‐AS1 could regulate miR‐671‐5p and SPTBN2 expression and participate in the functional activities of ovarian cancer cells. HOXB‐AS1 repressed ferroptosis in a miR‐671‐5p/SPTBN2‐dependent manner in epithelial ovarian cancer, thereby facilitating the progression of ovarian cancer, which might be a therapeutic target for treating ovarian cancer.
Citation format
HE, Chao, et al. Lncrna HOXB‐AS1 accelerates epithelial ovarian cancer progression by modulating the mir‐671‐5p/sptbn2 axis. JOURNAL OF BIOCHEMICAL AND MOLECULAR TOXICOLOGY, 2026, 40(2): e70695.