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Published on: July 30, 2018
TMEM158-mediated TGF-β signaling pathway modulates the sensitivity of TP53-deficient osteosarcoma to USP14 inhibitors
Zi-Yu Chen1,2, Miersalijiang Yasen1, Song-Yao Jiang2
1Department of Orthopedic Surgery, Zhongshan Hospital (Xiamen), Fudan University, Xiamen, 361000, China.
Abstract:
Previous studies have demonstrated that the USP14 inhibitor IU1 and USP14/UCHL5 inhibitor b-AP15 can extend the survival period of TP53-deficient mice with spontaneous osteosarcoma (OS). However, the underlying molecular mechanisms remain to be fully elucidated. The transmembrane protein TMEM158 has been identified as a key regulator in the progression of various cancers. Nevertheless, its functional role in OS remains largely unknown. In this study, we conducted comprehensive bioinformatics analyses-including cluster analysis, differential expression analysis, and functional enrichment analysis-on clinical OS databases to assess the correlation between TMEM158 expression and the proteasome-associated USP14 and UCHL5. Primary tumor cells (TP53-deficient OS cells), SAOS-2 and U-2OS cells were treated with IU1 or b-AP15, respectively. The expression levels of TMEM158 were quantified using qPCR. Subsequently, TMEM158 was knocked down in three cell lines, and subsequent changes in cellular activity and TGF-β signaling were evaluated. Concurrently, single-cell RNA sequencing data were analyzed to identify cell types exhibiting high TMEM158 expression and to explore their associated intercellular communication patterns. Both IU1 and b-AP15 significantly prolonged the survival of TP53-deficient OS mice and exhibited enhanced cytotoxic effects on TP53-deficient OS cells. These compounds selectively suppressed TMEM158 expression in TP53-deficient primary OS and SAOS-2 cells. Bioinformatics analysis revealed that TMEM158 is positively correlated with USP14 and UCHL5 expression and serves as an independent prognostic marker for poor clinical outcomes in OS patients. Experimental validation showed that TMEM158 knockdown significantly reduced the viability of TP53-deficient primary OS and SAOS-2 cells, and inhibited TGF-β pathway activation. Osteoblastic OS cells displayed concurrent suppression of the P53 pathway and activation of the TGF-β pathway, with a strong covariant relationship between TMEM158 and activity of TGF-β pathway. Meanwhile, there may be intercellular TGF-β signaling communication between osteoblastic OS cells with high expression levels of TMEM158 and macrophages. Our findings demonstrated that the TMEM158-TGF-β pathway plays a central role in mediating the heightened sensitivity of TP53-deficient OS to USP14 inhibition. Targeting this pathway may represent a promising therapeutic strategy for precision treatment of osteosarcoma.
Insights
USP14 inhibitors IU1 and b-AP15 extend survival in osteosarcoma (OS) mice by suppressing TMEM158 expression. Targeting the TMEM158-TGF-β pathway offers a novel precision therapy for TP53-deficient OS.
Area of Science:
- Oncology
- Molecular Biology
- Biochemistry
Background:
- Osteosarcoma (OS) is a primary bone malignancy with limited therapeutic options.
- TP53 deficiency is common in OS, impacting treatment response.
- USP14 and UCHL5 are proteasome-associated deubiquitinating enzymes implicated in cancer progression.
Purpose of the Study:
- To elucidate the molecular mechanisms by which USP14 inhibitors affect TP53-deficient osteosarcoma.
- To investigate the role of transmembrane protein 158 (TMEM158) in OS progression and its correlation with USP14 and UCHL5.
- To evaluate the therapeutic potential of targeting the TMEM158-TGF-β pathway in OS.
Main Methods:
- Bioinformatics analyses of clinical OS databases (cluster, differential expression, functional enrichment).
- In vivo studies using TP53-deficient OS mice treated with USP14 inhibitors (IU1, b-AP15).
- In vitro experiments involving OS cell lines (TP53-deficient primary OS, SAOS-2, U-2OS) with inhibitor treatment and TMEM158 knockdown.
- Quantitative PCR (qPCR) for TMEM158 expression.
- Single-cell RNA sequencing (scRNA-seq) for cell type identification and intercellular communication analysis.
Main Results:
- USP14 inhibitors IU1 and b-AP15 significantly prolonged survival in TP53-deficient OS mice and enhanced cytotoxicity in OS cells.
- TMEM158 expression was selectively suppressed by these inhibitors in OS cells.
- Bioinformatics analysis revealed a positive correlation between TMEM158, USP14, and UCHL5 expression, with TMEM158 as an independent prognostic marker for poor OS outcomes.
- TMEM158 knockdown reduced OS cell viability and inhibited TGF-β pathway activation.
- TP53-deficient osteoblastic OS cells showed suppressed P53 and activated TGF-β pathways, with TMEM158 positively correlating with TGF-β pathway activity.
- Potential intercellular TGF-β signaling communication was identified between TMEM158-high osteoblastic OS cells and macrophages.
Conclusions:
- The TMEM158-TGF-β pathway is crucial in mediating the sensitivity of TP53-deficient OS to USP14 inhibition.
- Targeting the TMEM158-TGF-β axis represents a promising therapeutic strategy for precision treatment of osteosarcoma.
- TMEM158 serves as a potential therapeutic target and prognostic biomarker in osteosarcoma.
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