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Investigation of the Transcriptional Role of a RUNX1 Intronic Silencer by CRISPR/Cas9 Ribonucleoprotein in Acute Myeloid Leukemia Cells
Published on: September 1, 2019
SOX9 is a key component of RUNX2-regulated transcriptional circuitry in osteosarcoma
Young-Im Kim1, Yu-Chou Tseng1, Gamze Ayaz1
1Cancer and Stem Cell Epigenetics Group, Laboratory of Cancer Biology and Genetics, Center for Cancer Research, National Cancer Institute, Bethesda, MD, USA.
Background:
The absence of prominent, actionable genetic alternations in osteosarcomas (OS) implies that transcriptional and epigenetic mechanisms significantly contribute to the progression of this life-threatening form of cancer. Therefore, the identification of potential transcriptional events that promote the survival of OS cells could be key in devising targeted therapeutic approaches for OS. We have previously shown that RUNX2 is a transcription factor (TF) essential for OS cell survival. Unfortunately, the transcriptional network or circuitry regulated by RUNX2 in OS cells is still largely unknown.
Methods:
The TFs that are in the RUNX2 transcriptional circuitry were identified by analyzing RNAseq and ChIPseq datasets of RUNX2. To evaluate the effect of SOX9 knockdown on the survival of osteosarcoma cells in vitro, we employed cleaved caspase-3 immunoblotting and propidium iodide staining techniques. The impact of SOX9 and JMJD1C depletion on OS tumor growth was examined in vivo using xenografts and immunohistochemistry. Downstream targets of SOX9 were identified and dissected using RNAseq, pathway analysis, and gene set enrichment analysis. Furthermore, the interactome of SOX9 was identified using BioID and validated by PLA.
Result:
Our findings demonstrate that SOX9 is a critical TF that is induced by RUNX2. Both in vitro and in vivo experiments revealed that SOX9 plays a pivotal role in the survival of OS. RNAseq analysis revealed that SOX9 activates the transcription of MYC, a downstream target of RUNX2. Mechanistically, our results suggest a transcriptional network involving SOX9, RUNX2, and MYC, with SOX9 binding to RUNX2. Moreover, we discovered that JMJD1C, a chromatin factor, is a novel binding partner of SOX9, and depletion of JMJD1C impairs OS tumor growth.
Conclusion:
The findings of this study represent a significant advancement in our understanding of the transcriptional network present in OS cells, providing valuable insights that may contribute to the development of targeted therapies for OS.
Insights
This study identifies SOX9 as a key transcription factor in osteosarcoma (OS) survival, regulated by RUNX2 and influencing MYC. Targeting SOX9 and JMJD1C may offer new therapeutic strategies for this cancer.
Area of Science:
- Molecular Biology
- Cancer Research
- Epigenetics
Background:
- Osteosarcoma (OS) progression is driven by transcriptional and epigenetic mechanisms due to a lack of actionable genetic alterations.
- RUNX2 is a critical transcription factor (TF) for OS cell survival, but its regulatory network remains largely unknown.
- Identifying TFs that promote OS cell survival is crucial for developing targeted therapies.
Purpose of the Study:
- To elucidate the transcriptional network regulated by RUNX2 in osteosarcoma cells.
- To identify novel transcription factors involved in OS cell survival.
- To explore potential therapeutic targets for osteosarcoma.
Main Methods:
- RNAseq and ChIPseq analysis to identify TFs in the RUNX2 circuitry.
- In vitro assays (caspase-3 immunoblotting, propidium iodide staining) to assess SOX9's effect on OS cell survival.
- In vivo xenograft models and immunohistochemistry to evaluate SOX9 and JMJD1C depletion impact.
- RNAseq, pathway analysis, and gene set enrichment analysis to identify SOX9 downstream targets.
- BioID and PLA to identify and validate SOX9 interactome.
Main Results:
- SOX9 is a critical TF induced by RUNX2 and essential for OS cell survival both in vitro and in vivo.
- SOX9 activates MYC transcription, a downstream target of RUNX2, suggesting a RUNX2-SOX9-MYC regulatory axis.
- JMJD1C is identified as a novel binding partner of SOX9, and its depletion inhibits OS tumor growth.
Conclusions:
- This study reveals a novel transcriptional network involving RUNX2, SOX9, and MYC in osteosarcoma.
- SOX9 plays a pivotal role in OS cell survival and tumor growth.
- The findings provide valuable insights for developing targeted therapies for osteosarcoma, highlighting SOX9 and JMJD1C as potential targets.
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