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SF3B1 mutation accelerates the development of CLL via activation of the mTOR pathway
Bo Zhang, Prajish Iyer, Meiling Jin, Elisa Ten Hacken, Zachary J. Cartun, Kevyn L. Hart, Mike Fernandez, Kristen Stevenson, Laura Rassenti, Emanuela M. Ghia, Thomas J. Kipps, Donna Neuberg, Ruben Carrasco, Wing C. Chan, Joo Y. Song, Yu Hu, Catherine J. Wu, Lili Wang
Bo Zhang, Prajish Iyer, Meiling Jin, Elisa Ten Hacken, Zachary J. Cartun, Kevyn L. Hart, Mike Fernandez, Kristen Stevenson, Laura Rassenti, Emanuela M. Ghia, Thomas J. Kipps, Donna Neuberg, Ruben Carrasco, Wing C. Chan, Joo Y. Song, Yu Hu, Catherine J. Wu, Lili Wang
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Research Article Hematology Oncology

SF3B1 mutation accelerates the development of CLL via activation of the mTOR pathway

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Abstract

RNA splicing factor SF3B1 is one of the most recurrently mutated genes in chronic lymphocytic leukemia (CLL) and frequently co-occurs with chromosome 13q deletion [del(13q)]. This combination is associated with poor prognosis in CLL, suggesting these lesions increase CLL aggressiveness. While del(13q) in murine B cells (minimal deleted region of 13q14 includes DLEU1, DLEU2, and miR15a-16-1; Mdr mice), but not expression of Sf3b1-K700E, drives the initiation of CLL, we hypothesize that SF3B1 mutation accelerates CLL progression. In this study, we crossed mice with a B cell–specific Sf3b1-K700E allele with Mdr mice to determine the impact of Sf3b1 mutation on CLL progression. We found that the co-occurrence of these 2 lesions in murine B cells caused acceleration of CLL. We showed that Sf3b1-K700E impacted alternative RNA splicing of nuclear factor of activated T cells C1 (Nfatc1) and activated mTOR signaling and the MYC pathway, contributing to CLL acceleration. Moreover, concurrent inhibition of RNA splicing and the mTOR pathway led to cell death in vitro and in vivo in murine CLL cells with SF3B1 mutation and del(13q). Our results thus suggest that SF3B1 mutation contributes to the aggressiveness of CLL by activating the mTOR pathway through alternative splicing of Nfatc1, providing a rationale for targeting mTOR and RNA splicing in the subset of CLL patients with both SF3B1 mutations and del(13q).

Authors

Bo Zhang, Prajish Iyer, Meiling Jin, Elisa Ten Hacken, Zachary J. Cartun, Kevyn L. Hart, Mike Fernandez, Kristen Stevenson, Laura Rassenti, Emanuela M. Ghia, Thomas J. Kipps, Donna Neuberg, Ruben Carrasco, Wing C. Chan, Joo Y. Song, Yu Hu, Catherine J. Wu, Lili Wang

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Figure 2

Coexpression of Sf3b1-K700E with Mdr deletion affects B cell development and growth.

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Coexpression of Sf3b1-K700E with Mdr deletion affects B cell development...
(A) Spleen weight, total number of splenocytes, and splenic B cells in WT, Mdr MT, and DM mice at the age of 12 weeks are shown. The fold changes in Mdr MT and DM mice are plotted relative to WT mice. Each dot represents 1 mouse. The center lines indicate the average. * indicates P < 0.01, Student t test. (B) Subsets of B cells from bone marrow and spleen in WT, Mdr MT, and DM mice at the age of 12 weeks are shown. The fold changes in Mdr MT and DM mice are plotted relative to WT mice. Each dot represents 1 mouse. Center lines indicate the average. * indicates P < 0.01, Student t test. (C–F) The proliferation curve (C), cell division (D), apoptosis (E), and cell cycle (F) of B cells were derived from WT, Mdr MT, and DM mice after stimulation with IL-4 and LPS in vitro. Data are presented as average ± SD and derived from 5 mice in each group except cell cycle from 3 mice in each group. Cell division and cell cycle are analyzed after stimulation for 3 days and 24 hours, respectively. *P < 0.01, 1-way ANOVA. (G) Heatmap shows differential gene expression between murine splenic normal B cells with DM and other genetic lesions, including Sf3b1-K700E or Mdr deletion (Log2FC ≥ 1, FDR < 0.05). (H) Gene set enrichment analysis (GSEA) of differentially expressed genes between DM cells and other cells from G. Significance cutoff is set as FDR < 0.1. NES, normalized enrichment score. (I) DM cells have reduced expression of electron transport complex II, III, IV expression in splenic normal B cells. * and ** indicate P < 0.01 and P < 0.001, respectively, Student t test.

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