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ETV4 and ETV5 drive synovial sarcoma through cell cycle and DUX4 embryonic pathway control
Joanna DeSalvo, Yuguang Ban, Luyuan Li, Xiaodian Sun, Zhijie Jiang, Darcy A. Kerr, Mahsa Khanlari, Maria Boulina, Mario R. Capecchi, Juha M. Partanen, Lin Chen, Tadashi Kondo, David M. Ornitz, Jonathan C. Trent, Josiane E. Eid
Joanna DeSalvo, Yuguang Ban, Luyuan Li, Xiaodian Sun, Zhijie Jiang, Darcy A. Kerr, Mahsa Khanlari, Maria Boulina, Mario R. Capecchi, Juha M. Partanen, Lin Chen, Tadashi Kondo, David M. Ornitz, Jonathan C. Trent, Josiane E. Eid
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Research Article Oncology

ETV4 and ETV5 drive synovial sarcoma through cell cycle and DUX4 embryonic pathway control

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Abstract

Synovial sarcoma is an aggressive malignancy with no effective treatments for patients with metastasis. The synovial sarcoma fusion SS18-SSX, which recruits the SWI/SNF-BAF chromatin remodeling and polycomb repressive complexes, results in epigenetic activation of FGF receptor (FGFR) signaling. In genetic FGFR-knockout models, culture, and xenograft synovial sarcoma models treated with the FGFR inhibitor BGJ398, we show that FGFR1, FGFR2, and FGFR3 were crucial for tumor growth. Transcriptome analyses of BGJ398-treated cells and histological and expression analyses of mouse and human synovial sarcoma tumors revealed prevalent expression of two ETS factors and FGFR targets, ETV4 and ETV5. We further demonstrate that ETV4 and ETV5 acted as drivers of synovial sarcoma growth, most likely through control of the cell cycle. Upon ETV4 and ETV5 knockdown, we observed a striking upregulation of DUX4 and its transcriptional targets that activate the zygotic genome and drive the atrophy program in facioscapulohumeral dystrophy patients. In addition to demonstrating the importance of inhibiting all three FGFRs, the current findings reveal potential nodes of attack for the cancer with the discovery of ETV4 and ETV5 as appropriate biomarkers and molecular targets, and activation of the embryonic DUX4 pathway as a promising approach to block synovial sarcoma tumors.

Authors

Joanna DeSalvo, Yuguang Ban, Luyuan Li, Xiaodian Sun, Zhijie Jiang, Darcy A. Kerr, Mahsa Khanlari, Maria Boulina, Mario R. Capecchi, Juha M. Partanen, Lin Chen, Tadashi Kondo, David M. Ornitz, Jonathan C. Trent, Josiane E. Eid

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Figure 6

Effect of ETV4 and ETV5 inhibition on SS cell and tumor growth.

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Effect of ETV4 and ETV5 inhibition on SS cell and tumor growth.
(A and B...
(A and B) Immunoblots show ETV4 and ETV5 depletion in SYO-1 (A) and HS-SY-II (B) cells. shETV4-1, -2, -A, and -B and shETV5-1, -2, -A, and -B designate the lentiviral vectors used for specific knockdown of ETV4 and ETV5, respectively. Control is non-target vector (TRC2-PLKO.1). Dividing lines indicate noncontiguous lanes of the same SDS-PAGE gels. (C and D) Bar graphs show the effects of ETV4 and ETV5 lentiviral depletion on SYO-1 (C) and HS-SY-II (D) cell growth. Growth was measured by absorbance at 570 nm. The 8 dots in each graph represent independent values from 2 SRB assays conducted in 4 replicates each. Error bars indicate SEM. P values compare mean absorbance in shETV groups against mean absorbance in the control vector (TRC2) group. *P < 0.00001 in both graphs. (E) Representative digital image of SS sarcospheres. (F and G) Dot plots show numbers of spheroids formed by SYO-1 (F) and HS-SY-II (G) cells expressing shETV4 and shETV5. Dots represent individual values derived from 2 independent assays performed in triplicate. Crossbars indicate the mean, and error bars indicate SEM. P values were measured by comparison of the average of each experimental group with that of the control (TRC2) group. *P range: 0.0318–0.0058 in SYO-1; *P range: 0.018–0.001 in HS-SY-II. (H) Immunoblot illustrates specific knockdown of ETV4 and ETV5 in SYO-1 cells transduced with shETV4-2 and shETV5-2 and implanted in NU/J mice. (I) Graph shows the total number of mice that developed tumors in each group, 3 months after injection. Actin served as loading control in all immunoblots. ANOVA F ratios and corresponding P values shown on top demonstrate significant variation of means among the 5 groups in each plot.

Copyright © 2026 American Society for Clinical Investigation
ISSN: 0021-9738 (print), 1558-8238 (online)

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