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Updated: Jul 23, 2025

A Preclinical Mouse Model of Osteosarcoma to Define the Extracellular Vesicle-mediated Communication Between Tumor and Mesenchymal Stem Cells
Published on: May 6, 2018
Super-enhancer-driven MLX mediates redox balance maintenance via SLC7A11 in osteosarcoma
Weitang Guo1, Xin Wang2, Bing Lu3
1Department of Musculoskeletal Oncology, The First Affiliated Hospital of Sun Yat-sen University, Guangzhou, 510080, China.
Abstract:
Osteosarcoma (OS) is a common type of bone tumor for which there has been limited therapeutic progress over the past three decades. The prevalence of transcriptional addiction in cancer cells emphasizes the biological significance and clinical relevance of super-enhancers. In this study, we found that Max-like protein X (MLX), a member of the Myc-MLX network, is driven by super-enhancers. Upregulation of MLX predicts a poor prognosis in osteosarcoma. Knockdown of MLX impairs growth and metastasis of osteosarcoma in vivo and in vitro. Transcriptomic sequencing has revealed that MLX is involved in various metabolic pathways (e.g., lipid metabolism) and can induce metabolic reprogramming. Furthermore, knockdown of MLX results in disturbed transport and storage of ferrous iron, leading to an increase in the level of cellular ferrous iron and subsequent induction of ferroptosis. Mechanistically, MLX regulates the glutamate/cystine antiporter SLC7A11 to promote extracellular cysteine uptake required for the biosynthesis of the essential antioxidant GSH, thereby detoxifying reactive oxygen species (ROS) and maintaining the redox balance of osteosarcoma cells. Importantly, sulfasalazine, an FDA-approved anti-inflammatory drug, can inhibit SLC7A11, disrupt redox balance, and induce massive ferroptosis, leading to impaired tumor growth in vivo. Taken together, this study reveals a novel mechanism in which super-enhancer-driven MLX positively regulates SLC7A11 to meet the alleviated demand for cystine and maintain the redox balance, highlighting the feasibility and clinical promise of targeting SLC7A11 in osteosarcoma.
Insights
Super-enhancer-driven MLX protein promotes osteosarcoma growth by regulating metabolic pathways and iron transport. Inhibiting MLX or targeting SLC7A11 induces ferroptosis, offering a promising therapeutic strategy for this bone cancer.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Metabolism
Background:
- Osteosarcoma (OS) exhibits limited therapeutic progress, with super-enhancers playing a crucial role in cancer cell transcriptional addiction.
- Max-like protein X (MLX), part of the Myc-MLX network, is driven by super-enhancers and its upregulation correlates with poor OS prognosis.
Purpose of the Study:
- To investigate the role of MLX in osteosarcoma progression and identify its downstream targets and mechanisms.
- To explore the potential of targeting MLX or its related pathways for osteosarcoma therapy.
Main Methods:
- Knockdown of MLX in osteosarcoma cell lines and in vivo models.
- Transcriptomic sequencing to identify MLX-regulated pathways.
- Analysis of iron metabolism and ferroptosis induction.
- Investigation of MLX regulation of SLC7A11 and glutathione (GSH) synthesis.
- Evaluation of sulfasalazine's effect on osteosarcoma growth.
Main Results:
- MLX knockdown impaired osteosarcoma growth and metastasis.
- MLX regulates metabolic reprogramming, including lipid metabolism and ferrous iron transport.
- MLX knockdown induced ferroptosis by increasing cellular ferrous iron levels.
- MLX positively regulates the glutamate/cystine antiporter SLC7A11, crucial for GSH biosynthesis and redox balance.
- Sulfasalazine, an inhibitor of SLC7A11, induced ferroptosis and inhibited tumor growth in vivo.
Conclusions:
- Super-enhancer-driven MLX promotes osteosarcoma by regulating SLC7A11, cysteine uptake, and redox balance.
- Targeting SLC7A11 with drugs like sulfasalazine represents a feasible and clinically promising therapeutic strategy for osteosarcoma.
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