RBM15-MKL1 fusion protein promotes leukemia via m6A methylation and Wnt pathway activation

M Madeline Y. Mayday (1Department of Pathology, Yale University, New Haven, CT) G Giulia Biancon M Manyi Wei (1Yale University, Department of Internal Medicine, Section of Hematology, New Haven, United States) C Christian Ramirez I Irene Moratti (6Laboratory of RNA and Disease Data Science, Department of Cellular, Computational and Integrative Biology, University of Trento, Povo, Italy) A Andreas P. Pintado-Urbanc (7Department of Molecular Biophysics and Biochemistry, Yale University, New Haven, CT) J Jether Amos Espinosa (1Department of Pathology, Yale University, New Haven, CT) M Mi Chen L Lin Wang M Matthew D. Simon (7Department of Molecular Biophysics and Biochemistry, Yale University, New Haven, CT) Y Yaara Ofir-Rosenfeld (5Storm Therapeutics Ltd, Cambridge, United Kingdom) O Oliver Rausch (10Storm Therapeutics Ltd, Cambridge, United Kingdom) T Toma Tebaldi S Stephanie Halene (Department of Pathology, Yale School of Medicine) D Diane S. Krause

Abstract

Abstract The recurrent t(1;22) translocation in acute megakaryoblastic leukemia (AMKL) encodes the RBM15-MKL1 fusion protein. Dysregulation of the N6-methyladenosine (m6A) modification affects RNA fate and is linked to oncogenesis. Because RBM15 is critical for bringing the m6A writer complex to specific RNAs, we hypothesized that RM disrupts the m6A modification, thereby altering the RNA fate to drive leukemogenesis in RM-AMKL. Using a multiomics approach, we showed for the first time, to our knowledge, that RM retains the RNA-binding and m6A-modifying functions of RBM15 while also selectively regulating distinct messenger RNA targets, including Frizzled genes, in the Wnt signaling pathway. Treating murine RM-AMKL cells with the methyltransferase 3 (METTL3) inhibitor STM3675, which decreases m6A deposition, induced apoptosis in vitro and prolonged survival in transplanted mice. Frizzled genes were upregulated by RM and downregulated upon METTL3 inhibition, implicating an m6A-dependent mechanism in their dysregulation. Direct Frizzled knockdown reduced RM-AMKL growth in vitro and in vivo, highlighting Wnt signaling as a key oncogenic driver. Elevated Wnt pathway activity and Frizzled expression in multiple forms of human AMKL underscores the relevance of our findings. Together, our results establish that RM-specific m6A modifications and Wnt pathway activation are critical drivers of RM-AMKL, thereby identifying these pathways as potential therapeutic targets.

Article Details

Journal Blood
Volume / Issue Vol. 146, Issue 9
Published August 28, 2025
Pages 1096-1109
ISSN 0006-4971
Publisher Elsevier BV

Journal Info

Blood

Elsevier BV

ISSN: 0006-4971 Health Sciences

Authors (15)

M

Madeline Y. Mayday

1Department of Pathology, Yale University, New Haven, CT

G

Giulia Biancon

M

Manyi Wei

1Yale University, Department of Internal Medicine, Section of Hematology, New Haven, United States

C

Christian Ramirez

I

Irene Moratti

6Laboratory of RNA and Disease Data Science, Department of Cellular, Computational and Integrative Biology, University of Trento, Povo, Italy

A

Andreas P. Pintado-Urbanc

7Department of Molecular Biophysics and Biochemistry, Yale University, New Haven, CT

J

Jether Amos Espinosa

1Department of Pathology, Yale University, New Haven, CT

M

Mi Chen

L

Lin Wang

M

Matthew D. Simon

7Department of Molecular Biophysics and Biochemistry, Yale University, New Haven, CT

Y

Yaara Ofir-Rosenfeld

5Storm Therapeutics Ltd, Cambridge, United Kingdom

O

Oliver Rausch

10Storm Therapeutics Ltd, Cambridge, United Kingdom

T

Toma Tebaldi

S

Stephanie Halene

Department of Pathology, Yale School of Medicine

D

Diane S. Krause