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Epigenetically Aberrant Stroma in MDS Propagates Disease via Wnt/β-Catenin Activation.

Citation
Bhagat, T. D., et al. “Epigenetically Aberrant Stroma In Mds Propagates Disease Via Wnt/Β-Catenin Activation.”. Cancer Research, pp. 4846-4857.
Center Albert Einstein College of Medicine
Author Tushar D Bhagat, Si Chen, Matthias Bartenstein, Trevor Barlowe, Dagny Von Ahrens, Gaurav S Choudhary, Patrick Tivnan, Elianna Amin, Mario Marcondes, Mathijs A Sanders, Remco M Hoogenboezem, Suman Kambhampati, Nandini Ramachandra, Iaonnis Mantzaris, Vineeth Sukrithan, Remi Laurence, Robert Lopez, Prafullla Bhagat, Orsi Giricz, Davendra Sohal, Amittha Wickrema, Cecilia Yeung, Kira Gritsman, Peter Aplan, Konrad Hochedlinger, Yiting Yu, Kith Pradhan, Jinghang Zhang, John M Greally, Siddhartha Mukherjee, Andrea Pellagatti, Jacqueline Boultwood, Britta Will, Ulrich Steidl, Marc H G P Raaijmakers, Joachim Deeg, Michael G Kharas, Amit Verma
Abstract

The bone marrow microenvironment influences malignant hematopoiesis, but how it promotes leukemogenesis has not been elucidated. In addition, the role of the bone marrow stroma in regulating clinical responses to DNA methyltransferase inhibitors (DNMTi) is also poorly understood. In this study, we conducted a DNA methylome analysis of bone marrow-derived stromal cells from myelodysplastic syndrome (MDS) patients and observed widespread aberrant cytosine hypermethylation occurring preferentially outside CpG islands. Stroma derived from 5-azacytidine-treated patients lacked aberrant methylation and DNMTi treatment of primary MDS stroma enhanced its ability to support erythroid differentiation. An integrative expression analysis revealed that the WNT pathway antagonist FRZB was aberrantly hypermethylated and underexpressed in MDS stroma. This result was confirmed in an independent set of sorted, primary MDS-derived mesenchymal cells. We documented a WNT/β-catenin activation signature in CD34 cells from advanced cases of MDS, where it associated with adverse prognosis. Constitutive activation of β-catenin in hematopoietic cells yielded lethal myeloid disease in a NUP98-HOXD13 mouse model of MDS, confirming its role in disease progression. Our results define novel epigenetic changes in the bone marrow microenvironment, which lead to β-catenin activation and disease progression of MDS. .

Year of Publication
2017
Journal
Cancer research
Volume
77
Issue
18
Number of Pages
4846-4857
Date Published
12/2017
ISSN Number
1538-7445
DOI
10.1158/0008-5472.CAN-17-0282
Alternate Journal
Cancer Res.
PMID
28684528
PMCID
PMC5600853
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