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Updated: Oct 9, 2025

Mapping the Structure-Function Relationships of Disordered Oncogenic Transcription Factors Using Transcriptomic Analysis
Published on: June 27, 2020
RNA-driven JAZF1-SUZ12 gene fusion in human endometrial stromal cells
Sachin Kumar Gupta1,2,3, Jocelyn Duen-Ya Jea1,2,3, Laising Yen1,2,3
1Department of Pathology & Immunology, Baylor College of Medicine, Houston, Texas, United States of America.
Abstract:
Oncogenic fusion genes as the result of chromosomal rearrangements are important for understanding genome instability in cancer cells and developing useful cancer therapies. To date, the mechanisms that create such oncogenic fusion genes are poorly understood. Previously we reported an unappreciated RNA-driven mechanism in human prostate cells in which the expression of chimeric RNA induces specified gene fusions in a sequence-dependent manner. One fundamental question yet to be addressed is whether such RNA-driven gene fusion mechanism is generalizable, or rather, a special case restricted to prostate cells. In this report, we demonstrated that the expression of designed chimeric RNAs in human endometrial stromal cells leads to the formation of JAZF1-SUZ12, a cancer fusion gene commonly found in low-grade endometrial stromal sarcomas. The process is specified by the sequence of chimeric RNA involved and inhibited by estrogen or progesterone. Furthermore, it is the antisense rather than sense chimeric RNAs that effectively drive JAZF1-SUZ12 gene fusion. The induced fusion gene is validated both at the RNA and the genomic DNA level. The ability of designed chimeric RNAs to drive and recapitulate the formation of JAZF1-SUZ12 gene fusion in endometrial cells represents another independent case of RNA-driven gene fusion, suggesting that RNA-driven genomic recombination is a permissible mechanism in mammalian cells. The results could have fundamental implications in the role of RNA in genome stability, and provide important insight in early disease mechanisms related to the formation of cancer fusion genes.
Insights
Chimeric RNAs can drive gene fusions in endometrial cells, forming cancer-associated JAZF1-SUZ12. This RNA-driven mechanism, influenced by hormones, suggests a broader role for RNA in genome stability.
Area of Science:
- Molecular Biology
- Genetics
- Cancer Research
Background:
- Oncogenic fusion genes arise from chromosomal rearrangements, crucial for cancer development and therapy.
- Mechanisms generating these fusion genes remain largely unknown.
- A previously identified RNA-driven mechanism in prostate cells induces gene fusions.
Purpose of the Study:
- To investigate if the RNA-driven gene fusion mechanism is generalizable beyond prostate cells.
- To explore the role of designed chimeric RNAs in inducing specific gene fusions in endometrial cells.
- To determine the influence of hormones and RNA strand (sense vs. antisense) on fusion gene formation.
Main Methods:
- Expression of designed chimeric RNAs in human endometrial stromal cells.
- Validation of induced fusion genes at both RNA and genomic DNA levels.
- Assessment of hormonal (estrogen, progesterone) inhibition on the fusion process.
Main Results:
- Designed chimeric RNAs induced the JAZF1-SUZ12 fusion gene in endometrial cells.
- Antisense chimeric RNAs were effective in driving JAZF1-SUZ12 gene fusion.
- Estrogen and progesterone inhibited the RNA-driven JAZF1-SUZ12 gene fusion process.
Conclusions:
- RNA-driven gene fusion is a permissible mechanism in mammalian cells, demonstrated by JAZF1-SUZ12 formation in endometrial cells.
- This finding provides a second independent case of RNA-driven gene fusion.
- Results offer insights into early cancer mechanisms and the role of RNA in genome stability.
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