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BPDCN MYB fusions regulate cell cycle genes, impair differentiation, and induce myeloid–dendritic cell leukemia
Christopher A.G. Booth, Juliette M. Bouyssou, Katsuhiro Togami, Olivier Armand, Hembly G. Rivas, Kezhi Yan, Siobhan Rice, Shuyuan Cheng, Emily M. Lachtara, Jean-Pierre Bourquin, Alex Kentsis, Esther Rheinbay, James A. DeCaprio, Andrew A. Lane
Christopher A.G. Booth, Juliette M. Bouyssou, Katsuhiro Togami, Olivier Armand, Hembly G. Rivas, Kezhi Yan, Siobhan Rice, Shuyuan Cheng, Emily M. Lachtara, Jean-Pierre Bourquin, Alex Kentsis, Esther Rheinbay, James A. DeCaprio, Andrew A. Lane
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Research Article Hematology

BPDCN MYB fusions regulate cell cycle genes, impair differentiation, and induce myeloid–dendritic cell leukemia

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Abstract

MYB fusions are recurrently found in select cancers, including blastic plasmacytoid DC neoplasm (BPDCN), an acute leukemia with poor prognosis. They are markedly enriched in BPDCN compared with other blood cancers and, in some patients, are the only obvious somatic mutation detected. This suggests that they may alone be sufficient to drive DC transformation. MYB fusions are hypothesized to alter the normal transcription factor activity of MYB, but, mechanistically, how they promote leukemogenesis is poorly understood. Using CUT&RUN chromatin profiling, we found that, in BPDCN leukemogenesis, MYB switches from being a regulator of DC lineage genes to aberrantly regulating G2/M cell cycle control genes. MYB fusions found in patients with BPDCN increased the magnitude of DNA binding at these locations, and this was linked to BPDCN-associated gene expression changes. Furthermore, expression of MYB fusions in vivo impaired DC differentiation and induced transformation to generate a mouse model of myeloid-dendritic acute leukemia. Therapeutically, we present evidence that all-trans retinoic acid (ATRA) may cause loss of MYB protein and cell death in BPDCN.

Authors

Christopher A.G. Booth, Juliette M. Bouyssou, Katsuhiro Togami, Olivier Armand, Hembly G. Rivas, Kezhi Yan, Siobhan Rice, Shuyuan Cheng, Emily M. Lachtara, Jean-Pierre Bourquin, Alex Kentsis, Esther Rheinbay, James A. DeCaprio, Andrew A. Lane

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Figure 3

BPDCN MYB fusions impair differentiation in dendritic progenitor cells.

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BPDCN MYB fusions impair differentiation in dendritic progenitor cells.
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(A) Schematic showing coexpression of V5-MYB constructs with a dTom reporter in Hoxb8-FL cells. (B) Experimental setup for Hoxb8-FL in vitro differentiation assays. (C) Representative flow cytometry plots at day 7 of in vitro differentiation of Hoxb8-FL cells of the indicated genotypes. Histogram on right shows B220 expression in empty vector cDCs and pDCs. (D) Number of dTom+ cells of the indicated cell types as a proportion of total dTom+ cells (n = 3 for each genotype). CD11b–CD11c–B220– undifferentiated cells, CD11b+CD11c+B220– cDCs, and CD11b–CD11c+B220+ pDCs. (E) Experimental setup for Hoxb8-FL in vivo differentiation assays. (F) Number of GFP+dTom+ bone marrow cells of the indicated cell types as a proportion of total GFP+dTom+ bone marrow cells (n = 3 for each genotype). CD19–CD11c–CD11b–B220– undifferentiated cells, CD11c–CD19–CD11b+ myeloid cells, CD11c–CD19+CD11b–B220+ B cells, and CD11c+CD19– DCs. (G) Number of GFP+dTom+ spleen cells of the indicated cell types as a proportion of total GFP+dTom+CD11c+ spleen cells, normalized to empty vector (n = 3 for each genotype). CD11c+CD19–CD11b+B220– cDCs and CD11c+CD19–CD11b–B220+BST2+SIGLEC-H+ pDCs. (D, F, and G) Data represent mean ± SEM. Significance determined by 1-way ANOVA with Tukey correction for multiple comparisons. *P < 0.05, **P < 0.01, ***P < 0.001.

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