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Published on: December 28, 2016
HEY1-NCOA2 expression modulates chondrogenic differentiation and induces mesenchymal chondrosarcoma in mice
Miwa Tanaka1,2,3, Mizuki Homme1, Yasuyo Teramura1
1Division of Carcinogenesis, The Cancer Institute, Japanese Foundation for Cancer Research, Tokyo, Japan.
Abstract:
Mesenchymal chondrosarcoma affects adolescents and young adults, and most cases usually have the HEY1::NCOA2 fusion gene. However, the functional role of HEY1-NCOA2 in the development and progression of mesenchymal chondrosarcoma remains largely unknown. This study aimed to clarify the functional role of HEY1-NCOA2 in transformation of the cell of origin and induction of typical biphasic morphology of mesenchymal chondrosarcoma. We generated a mouse model for mesenchymal chondrosarcoma by introducing HEY1-NCOA2 into mouse embryonic superficial zone (eSZ) followed by subcutaneous transplantation into nude mice. HEY1-NCOA2 expression in eSZ cells successfully induced subcutaneous tumors in 68.9% of recipients, showing biphasic morphologies and expression of Sox9, a master regulator of chondrogenic differentiation. ChIP sequencing analyses indicated frequent interaction between HEY1-NCOA2 binding peaks and active enhancers. Runx2, which is important for differentiation and proliferation of the chondrocytic lineage, is invariably expressed in mouse mesenchymal chondrosarcoma, and interaction between HEY1-NCOA2 and Runx2 is observed using NCOA2 C-terminal domains. Although Runx2 knockout resulted in significant delay in tumor onset, it also induced aggressive growth of immature small round cells. Runx3, which is also expressed in mesenchymal chondrosarcoma and interacts with HEY1-NCOA2, replaced the DNA-binding property of Runx2 only in part. Treatment with the HDAC inhibitor panobinostat suppressed tumor growth both in vitro and in vivo, abrogating expression of genes downstream of HEY1-NCOA2 and Runx2. In conclusion, HEY1::NCOA2 expression modulates the transcriptional program in chondrogenic differentiation, affecting cartilage-specific transcription factor functions.
Insights
The HEY1-NCOA2 fusion gene drives mesenchymal chondrosarcoma by altering chondrogenic gene expression. Targeting this fusion with HDAC inhibitors shows therapeutic promise for this rare cancer.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Mesenchymal chondrosarcoma is a rare bone cancer primarily affecting young individuals.
- The HEY1::NCOA2 fusion gene is a common hallmark, but its functional role is poorly understood.
Purpose of the Study:
- To elucidate the functional role of the HEY1-NCOA2 fusion gene in mesenchymal chondrosarcoma development and morphology.
- To investigate the molecular mechanisms underlying HEY1-NCOA2-driven tumorigenesis.
Main Methods:
- Generation of a mouse model by introducing HEY1-NCOA2 into embryonic superficial zone (eSZ) cells.
- Tumor induction via subcutaneous transplantation and analysis of tumor morphology and gene expression (Sox9, Runx2, Runx3).
- Chromatin immunoprecipitation sequencing (ChIP-seq) to identify HEY1-NCOA2 binding sites and enhancer interactions; HDAC inhibitor (panobinostat) treatment in vitro and in vivo.
Main Results:
- HEY1-NCOA2 expression in eSZ cells induced tumors with biphasic morphology and Sox9 expression in 68.9% of mice.
- ChIP-seq revealed interactions between HEY1-NCOA2 and active enhancers; Runx2 and Runx3 were identified as interacting partners.
- Runx2 knockout delayed tumor onset but led to aggressive immature cell growth; Runx3 partially compensated for Runx2 function.
- Panobinostat treatment suppressed tumor growth and abrogated downstream gene expression.
Conclusions:
- HEY1::NCOA2 significantly impacts the transcriptional program of chondrogenic differentiation.
- The fusion gene affects cartilage-specific transcription factors, including Runx2 and Runx3.
- Targeting HEY1-NCOA2-driven pathways with HDAC inhibitors presents a potential therapeutic strategy for mesenchymal chondrosarcoma.
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