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HEY1-NCOA2 expression modulates chondrogenic differentiation and induces mesenchymal chondrosarcoma in mice
Miwa Tanaka, Mizuki Homme, Yasuyo Teramura, Kohei Kumegawa, Yukari Yamazaki, Kyoko Yamashita, Motomi Osato, Reo Maruyama, Takuro Nakamura
Miwa Tanaka, Mizuki Homme, Yasuyo Teramura, Kohei Kumegawa, Yukari Yamazaki, Kyoko Yamashita, Motomi Osato, Reo Maruyama, Takuro Nakamura
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Research Article Cell biology Oncology

HEY1-NCOA2 expression modulates chondrogenic differentiation and induces mesenchymal chondrosarcoma in mice

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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.

Authors

Miwa Tanaka, Mizuki Homme, Yasuyo Teramura, Kohei Kumegawa, Yukari Yamazaki, Kyoko Yamashita, Motomi Osato, Reo Maruyama, Takuro Nakamura

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Figure 4

HEY1-NCOA2 binding sites in mesenchymal chondrosarcoma.

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HEY1-NCOA2 binding sites in mesenchymal chondrosarcoma.
(A) Global distr...
(A) Global distribution of HEY1-NCOA2 binding peaks in the mouse mesenchymal chondrosarcoma cell C24. (B) The GREAT gene ontology analysis identifies important genetic pathways. Blue rectangles indicate each P value. (C) Composite plots (left) and heatmap (right) of HEY1-NCOA2, H3K27ac, H3K4me3, and H3K27me3 signals centered on HEY1-NCOA2 binding peaks in mouse MCS. (D) Venn diagram showing overlapping between HEY1-NCOA2 (HN2) and H3K27ac binding peaks. Enrichment of gene ontology biological process for overlapping peaks is indicated in right. (E) ChIP-Seq occupancy profiles for Sox9, endogenous Hey1, and Runx2 loci. Arrows indicate transcriptional orientation and the transcriptional start site for Runx2. (F) Quantitative RT-PCR showing downregulation of Hey1 by HEY1::NCOA2 silencing. The statistical analysis was performed by Student’s t test. *P < 0.05. (G) Enhancers are ranked by increasing H3K27ac ChIP-Seq signals in mesenchymal chondrosarcoma cells. Using the ROSE algorithm, 619 enhancers are defined as super enhancers (SEs). (H) Gene ontology analysis of 619 SEs. P values in B, D, and H were calculated using a binominal test.

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