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A distinct mechanism of epigenetic reprogramming silences PAX2 and initiates endometrial carcinogenesis
Subhransu S Sahoo1, Susmita G Ramanand1, Ileana C Cuevas2
1Department of Pathology.
Abstract:
Functional inactivation of tumor suppressor genes drives cancer initiation, progression, and treatment responses. Most tumor suppressor genes are inactivated through 1 of 2 well-characterized mechanisms: DNA-level mutations, such as point mutations or deletions, and promoter DNA hypermethylation. Here, we report a distinct third mechanism of tumor suppressor inactivation based on alterations to the histone rather than DNA code. We demonstrated that PAX2 is an endometrial tumor suppressor recurrently inactivated by a distinct epigenetic reprogramming event in more than 80% of human endometrial cancers. Integrative transcriptomic, epigenomic, 3D genomic, and machine learning analyses showed that PAX2 transcriptional downregulation is associated with replacement of open/active chromatin features (H3K27ac/H3K4me3) with inaccessible/repressive chromatin features (H3K27me3) in a framework dictated by 3D genome organization. The spread of the repressive H3K27me3 signal resembled a pearl necklace, with its length modulated by cohesin loops, thereby preventing transcriptional dysregulation of neighboring genes. This mechanism, involving the loss of a promoter-proximal superenhancer, was shown to underlie transcriptional silencing of PAX2 in human endometrial cancers. Mouse and human preclinical models established PAX2 as a potent endometrial tumor suppressor. Functionally, PAX2 loss promoted endometrial carcinogenesis by rewiring the transcriptional landscape via global enhancer reprogramming. The discovery that most endometrial cancers originate from a recurring epigenetic alteration carries profound implications for their diagnosis and treatment.
Insights
A novel epigenetic mechanism inactivates the PAX2 tumor suppressor in most endometrial cancers. This histone modification, distinct from DNA mutations or methylation, offers new diagnostic and therapeutic targets.
Area of Science:
- Oncology
- Epigenetics
- Genomics
Background:
- Tumor suppressor gene inactivation is crucial for cancer development.
- Common mechanisms include DNA mutations and promoter hypermethylation.
- A third, distinct epigenetic mechanism involving histone alterations is now identified.
Purpose of the Study:
- To identify and characterize a novel mechanism of tumor suppressor inactivation in endometrial cancer.
- To investigate the role of the PAX2 gene in endometrial carcinogenesis.
- To explore the therapeutic implications of this epigenetic alteration.
Main Methods:
- Integrative analyses of transcriptomic, epigenomic, and 3D genomic data.
- Machine learning approaches to analyze large datasets.
- Utilized mouse and human preclinical models.
Main Results:
- PAX2, an endometrial tumor suppressor, is inactivated epigenetically in over 80% of endometrial cancers.
- This involves replacement of active chromatin marks with repressive H3K27me3 marks, driven by 3D genome organization.
- Loss of PAX2 promotes endometrial cancer by global enhancer reprogramming.
Conclusions:
- A novel epigenetic mechanism, distinct from DNA mutations or methylation, silences PAX2 in endometrial cancer.
- This PAX2 inactivation is driven by repressive histone modifications and enhancer reprogramming.
- This discovery has significant implications for endometrial cancer diagnosis and treatment.
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