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Updated: Jul 31, 2025

Intratibial Osteosarcoma Cell Injection to Generate Orthotopic Osteosarcoma and Lung Metastasis Mouse Models
Published on: October 28, 2021
miR-137-LAPTM4B regulates cytoskeleton organization and cancer metastasis via the RhoA-LIMK-Cofilin pathway in
Ruyu Yan1, Dan Liu1, Junjie Wang1
1School of Life Sciences, Anhui Medical University, Hefei, 230032, China.
Abstract:
Osteosarcoma (OS) is a rare malignant bone tumor but is one leading cause of cancer mortality in childhood and adolescence. Cancer metastasis accounts for the primary reason for treatment failure in OS patients. The dynamic organization of the cytoskeleton is fundamental for cell motility, migration, and cancer metastasis. Lysosome Associated Protein Transmembrane 4B (LAPTM4B) is an oncogene participating in various biological progress central to cancer biogenesis. However, the potential roles of LAPTM4B in OS and the related mechanisms remain unknown. Here, we established the elevated LAPTM4B expression in OS, and it is essential in regulating stress fiber organization through RhoA-LIMK-cofilin signaling pathway. In terms of mechanism, our data revealed that LAPTM4B promotes RhoA protein stability by suppressing the ubiquitin-mediated proteasome degradation pathway. Moreover, our data show that miR-137, rather than gene copy number and methylation status, contributes to the upregulation of LAPTM4B in OS. We report that miR-137 is capable of regulating stress fiber arrangement, OS cell migration, and metastasis via targeting LAPTM4B. Combining results from cells, patients' tissue samples, the animal model, and cancer databases, this study further suggests that the miR-137-LAPTM4B axis represents a clinically relevant pathway in OS progression and a viable target for novel therapeutics.
Insights
Lysosome Associated Protein Transmembrane 4B (LAPTM4B) drives osteosarcoma (OS) metastasis by stabilizing RhoA. Targeting the miR-137-LAPTM4B pathway offers a novel therapeutic strategy for this challenging bone cancer.
Area of Science:
- Oncology
- Molecular Biology
- Cell Biology
Background:
- Osteosarcoma (OS) is a primary bone cancer with high mortality, largely due to metastasis.
- Cytoskeletal dynamics are crucial for cancer cell migration and metastasis.
- Lysosome Associated Protein Transmembrane 4B (LAPTM4B) is an oncogene implicated in cancer progression.
Purpose of the Study:
- To investigate the role and mechanism of LAPTM4B in osteosarcoma (OS) metastasis.
- To elucidate the regulatory pathway involving LAPTM4B in OS progression.
Main Methods:
- Analysis of LAPTM4B expression in OS tissues and cell lines.
- Investigation of the RhoA-LIMK-cofilin signaling pathway.
- Assessment of LAPTM4B regulation by miR-137 and its impact on proteasome degradation.
- Validation in patient samples, an animal model, and cancer databases.
Main Results:
- LAPTM4B expression is elevated in OS and regulates stress fiber organization via the RhoA-LIMK-cofilin pathway.
- LAPTM4B enhances RhoA protein stability by inhibiting its proteasomal degradation.
- miR-137 upregulates LAPTM4B in OS and targets LAPTM4B to control cell migration and metastasis.
Conclusions:
- The miR-137-LAPTM4B axis is a key regulator of OS cell migration and metastasis.
- LAPTM4B is a potential therapeutic target for osteosarcoma treatment.
- Understanding this pathway provides insights into OS progression and therapeutic strategies.
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