Expression of sprouty2 inhibits B-cell proliferation and is epigenetically silenced in mouse and human B-cell lymphomas

Author:

Frank Matthew J.1,Dawson David W.12,Bensinger Steven J.13,Hong Jason S.1,Knosp Wendy M.4,Xu Lizhong5,Balatoni Cynthia E.1,Allen Eric L.1,Shen Rhine R.1,Bar-Sagi Dafna5,Martin Gail R.4,Teitell Michael A.126

Affiliation:

1. Department of Pathology and Laboratory Medicine and

2. Jonsson Comprehensive Cancer Center, David Geffen School of Medicine, and

3. Institute for Molecular Medicine, University of California–Los Angeles;

4. Department of Anatomy and Program in Developmental Biology, University of California at San Francisco;

5. Department of Biochemistry, New York University School of Medicine, NY; and

6. Molecular Biology Institute, NDC Center for Cell Control, Broad Institute for Regenerative Medicine and Stem Cell Research, and California NanoSystems Institute, University of California–Los Angeles

Abstract

B-cell lymphoma is the most common immune system malignancy. TCL1 transgenic mice (TCL1-tg), in which TCL1 is ectopically expressed in mature lymphocytes, develop multiple B- and T-cell leukemia and lymphoma subtypes, supporting an oncogenic role for TCL1 that probably involves AKT and MAPK-ERK signaling pathway augmentation. Additional, largely unknown genetic and epigenetic alterations cooperate with TCL1 during lymphoma progression. We examined DNA methylation patterns in TCL1-tg B-cell tumors to discover tumor-associated epigenetic changes, and identified hypermethylation of sprouty2 (Spry2). Sprouty proteins are context-dependent negative or positive regulators of MAPK-ERK pathway signaling, but their role(s) in B-cell physiology or pathology are unknown. Here we show that repression of Spry2 expression in TCL1-tg mouse and human B-cell lymphomas and cell lines is associated with dense DNA hypermethylation and was reversed by inhibition of DNA methylation. Spry2 expression was induced in normal splenic B cells by CD40/B-cell receptor costimulation and regulated a negative feedback loop that repressed MAPK-ERK signaling and decreased B-cell viability. Conversely, loss of Spry2 function hyperactivated MAPK-ERK signaling and caused increased B-cell proliferation. Combined, these results implicate epigenetic silencing of Spry2 expression in B lymphoma progression and suggest it as a companion lesion to ectopic TCL1 expression in enhancing MAPK-ERK pathway signaling.

Publisher

American Society of Hematology

Subject

Cell Biology,Hematology,Immunology,Biochemistry

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