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Published on: January 7, 2019
Targeting CIC::DUX4 sarcoma with Minnelide in a dual recombinase-initiated genetically engineered mouse model
MaKenna R Browne1,2,3, Axel V Silver4, Risha Banerjee4
1Cell and Molecular Biology Program, and.
Abstract:
CIC::DUX4 sarcoma (CDS) is a lethal cancer driven by a fusion between the tumor suppressor capicua (CIC) and the pioneer transcription factor double homeobox 4 (DUX4). We previously generated 3 genetically engineered mouse models (GEMMs) of CDS with CIC::DUX4 regulated by loxP-STOP-loxP cassettes, however, mice from all 3 models developed spontaneous tumors without Cre recombinase. Here, we established a next-generation GEMM of CDS (dual-flex [dFLEx] CDS) that used a dual recombinase (Cre plus the thermostable mutant of FLP recombinase FLPE) FLEx-switch design to activate CIC::DUX4 expression and initiate sarcomagenesis in a spatially and temporally controlled manner. Because CIC::DUX4 drives sarcoma development by activating an oncogenic transcriptional program, we performed a drug screen on human-derived CDS cell lines using a library of compounds that modulate transcription. This screen identified Minnelide, an inhibitor of RNA polymerase II-mediated transcription, as a selective inhibitor of CDS. Mechanistically, Minnelide acted through xeroderma pigmentosum type B to alter phosphorylation of RPB1, the largest subunit of RNA polymerase II. Subsequently, RPB1 underwent degradation leading to apoptosis of CDS cells. Minnelide demonstrated in vivo efficacy in dFLEx CDS GEMMs and in human CDS xenografts. As Minnelide has already been demonstrated to be safe in clinical trials, these findings identify Minnelide as a potential therapeutic option to test in patients with CDS.
Insights
A new mouse model for CIC::DUX4 sarcoma (CDS) was developed. The drug Minnelide selectively inhibits CDS by targeting RNA polymerase II, showing promise for treating this lethal cancer.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- CIC::DUX4 sarcoma (CDS) is a lethal cancer driven by a specific gene fusion.
- Previous mouse models for CDS had limitations in controlling tumor development.
Purpose of the Study:
- To develop a next-generation genetically engineered mouse model (GEMM) for CDS with spatiotemporal control.
- To identify therapeutic agents that selectively target CDS cells.
Main Methods:
- Established a dual-recombinase FLEx-switch GEMM (dFLEx CDS) for controlled CIC::DUX4 activation.
- Conducted a drug screen on human CDS cell lines using transcription-modulating compounds.
- Investigated the mechanism of action for identified drug candidates.
Main Results:
- The dFLEx CDS model allows for controlled sarcomagenesis.
- Minnelide, an RNA polymerase II inhibitor, selectively killed CDS cells.
- Minnelide demonstrated efficacy in both mouse models and human xenografts.
- The drug's mechanism involves altering RPB1 phosphorylation and leading to apoptosis.
Conclusions:
- Minnelide is a potent and selective inhibitor of CIC::DUX4 sarcoma.
- The dFLEx CDS model provides a valuable tool for studying CDS.
- Minnelide shows therapeutic potential for CDS patients, supported by its safety in clinical trials.

