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Updated: Dec 18, 2025

Induction of Mesenchymal-Epithelial Transitions in Sarcoma Cells
Published on: April 7, 2017
Oncogenic Gene-Expression Programs in Leiomyosarcoma and Characterization of Conventional, Inflammatory, and
Matthew L Hemming1,2, Changyu Fan3, Chandrajit P Raut4
1Center for Sarcoma and Bone Oncology, Dana-Farber Cancer Institute, Harvard Medical School, Boston, Massachusetts. mhemming@partners.org.
Abstract:
Leiomyosarcoma (LMS) is a mesenchymal neoplasm with complex copy-number alterations and characteristic loss of tumor suppressor genes without known recurrent activating mutations. Clinical management of advanced LMS relies on chemotherapy and complementary palliative approaches, and research efforts to date have had limited success identifying clinically actionable biomarkers or targeted therapeutic vulnerabilities. To explore the biological underpinning of LMS, we evaluated gene-expression patterns of this disease in comparison with diverse sarcomas, nonmesenchymal neoplasms, and normal myogenic tissues. We identified a recurrent gene-expression program in LMS, with evidence of oncogenic evolution of an underlying smooth-muscle lineage-derived program characterized by activation of E2F1 and downstream effectors. Recurrently amplified or highly expressed genes in LMS were identified, including IGF1R and genes involved in retinoid signaling pathways. Though the majority of expressed transcripts were conserved across LMS samples, three separate subtypes were identified that were enriched for muscle-associated transcripts (conventional LMS), immune markers (inflammatory LMS), or a uterine-like gene-expression program (uterogenic LMS). Each of these subtypes expresses a unique subset of genes that may be useful in the management of LMS: IGF1R was enriched in conventional LMS, worse disease-specific survival was observed in inflammatory LMS, and prolactin was elaborated by uterogenic LMS. These results extend our understanding of LMS biology and identify several strategies and challenges for further translational investigation. IMPLICATIONS: LMS has a recurrent oncogenic transcriptional program and consists of molecular subtypes with biological and possible clinical implications.
Insights
Leiomyosarcoma (LMS) exhibits a recurring gene-expression program with distinct molecular subtypes. These subtypes, characterized by unique gene expression, offer potential new strategies for managing this complex cancer.
Area of Science:
- Oncology
- Genomics
- Molecular Biology
Background:
- Leiomyosarcoma (LMS) is a challenging mesenchymal neoplasm with complex genetic alterations.
- Current treatments for advanced LMS are limited, with few identified biomarkers or targeted therapies.
Purpose of the Study:
- To investigate the underlying biology of LMS by analyzing gene-expression patterns.
- To identify potential therapeutic vulnerabilities and biomarkers for LMS.
Main Methods:
- Comparative gene-expression analysis of LMS against other sarcomas, non-mesenchymal neoplasms, and normal myogenic tissues.
- Identification of recurrently amplified or highly expressed genes, including IGF1R and retinoid signaling pathway genes.
Main Results:
- A recurrent oncogenic transcriptional program was identified in LMS, evolving from a smooth-muscle lineage program with E2F1 activation.
- Three distinct LMS subtypes were discovered: conventional (muscle-associated transcripts), inflammatory (immune markers), and uterogenic (uterine-like program).
- IGF1R was enriched in conventional LMS, inflammatory LMS showed worse survival, and uterogenic LMS produced prolactin.
Conclusions:
- LMS possesses a recurrent oncogenic transcriptional program.
- Molecular subtypes of LMS have distinct biological characteristics and potential clinical implications.
- Findings provide a foundation for further translational research and therapeutic development in LMS.
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