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Tumorsphere Derivation and Treatment from Primary Tumor Cells Isolated from Mouse Rhabdomyosarcomas
Published on: September 13, 2019
Identification and targeting of a HES1-YAP1-CDKN1C functional interaction in fusion-negative rhabdomyosarcoma
Alexander R Kovach1, Kristianne M Oristian2,3, David G Kirsch2,3
1Department of Pediatrics, Duke University School of Medicine, Durham, NC, USA.
Abstract:
Rhabdomyosarcoma (RMS), a cancer characterized by features of skeletal muscle, is the most common soft-tissue sarcoma of childhood. With 5-year survival rates among high-risk groups at < 30%, new therapeutics are desperately needed. Previously, using a myoblast-based model of fusion-negative RMS (FN-RMS), we found that expression of the Hippo pathway effector transcriptional coactivator YAP1 (YAP1) permitted senescence bypass and subsequent transformation to malignant cells, mimicking FN-RMS. We also found that YAP1 engages in a positive feedback loop with Notch signaling to promote FN-RMS tumorigenesis. However, we could not identify an immediate downstream impact of this Hippo-Notch relationship. Here, we identify a HES1-YAP1-CDKN1C functional interaction, and show that knockdown of the Notch effector HES1 (Hes family BHLH transcription factor 1) impairs growth of multiple FN-RMS cell lines, with knockdown resulting in decreased YAP1 and increased CDKN1C expression. In silico mining of published proteomic and transcriptomic profiles of human RMS patient-derived xenografts revealed the same pattern of HES1-YAP1-CDKN1C expression. Treatment of FN-RMS cells in vitro with the recently described HES1 small-molecule inhibitor, JI130, limited FN-RMS cell growth. Inhibition of HES1 in vivo via conditional expression of a HES1-directed shRNA or JI130 dosing impaired FN-RMS tumor xenograft growth. Lastly, targeted transcriptomic profiling of FN-RMS xenografts in the context of HES1 suppression identified associations between HES1 and RAS-MAPK signaling. In summary, these in vitro and in vivo preclinical studies support the further investigation of HES1 as a therapeutic target in FN-RMS.
Insights
New research reveals Hes family BHLH transcription factor 1 (HES1) is a promising therapeutic target for fusion-negative rhabdomyosarcoma (FN-RMS). Inhibiting HES1 significantly impairs FN-RMS tumor growth, offering hope for new childhood cancer treatments.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Genetics
Background:
- Rhabdomyosarcoma (RMS) is the most common childhood soft-tissue sarcoma with poor survival rates for high-risk groups.
- Previous studies implicated YAP1 and Notch signaling in fusion-negative RMS (FN-RMS) tumorigenesis.
- The immediate downstream effectors of the Hippo-Notch interaction in FN-RMS remained unidentified.
Purpose of the Study:
- To identify functional interactions downstream of YAP1 and Notch signaling in FN-RMS.
- To investigate the role of Hes family BHLH transcription factor 1 (HES1) in FN-RMS.
- To evaluate HES1 as a potential therapeutic target for FN-RMS.
Main Methods:
- Investigated the HES1-YAP1-CDKN1C functional interaction in FN-RMS cell lines.
- Utilized in silico analysis of human RMS patient-derived xenograft data.
- Administered HES1 inhibition using a small-molecule inhibitor (JI130) and shRNA in vitro and in vivo.
- Performed targeted transcriptomic profiling of xenografts.
Main Results:
- Knockdown of HES1 decreased YAP1 and increased CDKN1C expression in FN-RMS cells.
- Human RMS xenografts exhibited a similar HES1-YAP1-CDKN1C expression pattern.
- HES1 inhibition, via JI130 or shRNA, significantly impaired FN-RMS cell growth and xenograft tumor growth.
- HES1 suppression was associated with RAS-MAPK signaling in FN-RMS xenografts.
Conclusions:
- HES1 plays a critical role in FN-RMS cell proliferation and tumorigenesis.
- Targeting HES1 represents a viable therapeutic strategy for FN-RMS.
- Further preclinical investigation of HES1 as a therapeutic target in FN-RMS is warranted.
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