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Updated: Jan 28, 2026

In Vivo Inhibition of MicroRNA to Decrease Tumor Growth in Mice
Published on: August 23, 2019
Chimeric NANOG repressors inhibit glioblastoma growth in vivo in a context-dependent manner
Monika Kuciak1, Christophe Mas1,2, Isabel Borges1
1Department of Genetic Medicine and Development, University of Geneva Medical School, Rue Michel Servet 1, CH-1211, Geneva, Switzerland.
Abstract:
Targeting stemness promises new therapeutic strategies against highly invasive tumors. While a number of approaches are being tested, inhibiting the core transcription regulatory network of cancer stem cells is an attractive yet challenging possibility. Here we have aimed to provide the proof of principle for a strategy, previously used in developmental studies, to directly repress the targets of a salient stemness and pluripotency factor: NANOG. In doing so we expected to inhibit the expression of so far unknown mediators of pro-tumorigenic NANOG function. We chose NANOG since previous work showed the essential requirement for NANOG activity for human glioblastoma (GBM) growth in orthotopic xenografts, and it is apparently absent from many adult human tissues thus likely minimizing unwanted effects on normal cells. NANOG repressor chimeras, which we name NANEPs, bear the DNA-binding specificity of NANOG through its homeodomain (HD), and this is linked to transposable human repressor domains. We show that in vitro and in vivo, NANEP5, our most active NANEP with a HES1 repressor domain, mimics knock-down (kd) of NANOG function in GBM cells. Competition orthotopic xenografts also reveal the effectiveness of NANEP5 in a brain tumor context, as well as the specificity of NANEP activity through the abrogation of its function via the introduction of specific mutations in the HD. The transcriptomes of cells expressing NANEP5 reveal multiple potential mediators of pro-tumorigenic NANEP/NANOG action including intercellular signaling components. The present results encourage further studies on the regulation of context-dependent NANEP abundance and function, and the development of NANEP-based anti-cancer therapies.
Insights
This study introduces NANEPs, novel repressors targeting NANOG, a key factor in cancer stem cell growth. NANEP5 effectively inhibits glioblastoma (GBM) growth, offering a promising new therapeutic strategy for invasive tumors.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Stem Cell Research
Background:
- Targeting cancer stem cell (CSC) stemness is crucial for treating highly invasive tumors.
- Inhibiting CSC transcription factors presents a therapeutic challenge.
- NANOG is essential for human glioblastoma (GBM) growth and is a potential therapeutic target.
Purpose of the Study:
- To provide proof of principle for a strategy to repress NANOG targets using NANOG repressor effectors (NANEPs).
- To investigate the potential of NANEPs to inhibit pro-tumorigenic NANOG functions.
- To evaluate NANEP efficacy in GBM models.
Main Methods:
- Development of NANOG repressor chimeras (NANEPs) with NANOG's DNA-binding domain and repressor domains.
- In vitro and in vivo testing of NANEP5, a NANEP with a HES1 repressor domain, in GBM cells.
- Orthotopic xenograft models to assess NANEP5 efficacy and specificity.
- Transcriptome analysis of cells expressing NANEP5.
Main Results:
- NANEP5 effectively mimics NANOG knockdown in GBM cells, both in vitro and in vivo.
- NANEP5 demonstrated effectiveness in a brain tumor xenograft model.
- Specificity of NANEP activity was confirmed by mutations in the NANOG homeodomain.
- Transcriptome analysis identified potential mediators of NANOG/NANEP action, including intercellular signaling components.
Conclusions:
- NANEP5 shows significant potential as a therapeutic agent against GBM by targeting NANOG.
- The specificity of NANEPs was validated, suggesting a targeted approach with potentially fewer side effects.
- Further research into NANEP regulation and development of NANEP-based therapies is warranted.
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