Go to JCI Insight
  • About
  • Editors
  • Consulting Editors
  • For authors
  • Journal stats
  • Publication ethics
  • Publication alerts by email
  • Advertising
  • Job board
  • Contact
  • Clinical Research and Public Health
  • Current issue
  • Past issues
  • By specialty
    • COVID-19
    • Cardiology
    • Gastroenterology
    • Immunology
    • Metabolism
    • Nephrology
    • Neuroscience
    • Oncology
    • Pulmonology
    • Vascular biology
    • All ...
  • Videos
    • ASCI Milestone Awards
    • Video Abstracts
    • Conversations with Giants in Medicine
  • Reviews
    • View all reviews ...
    • The cGAS-STING pathway: DNA sensing in health and disease (Jun 2026)
    • Neurodegeneration (Mar 2026)
    • Clinical innovation and scientific progress in GLP-1 medicine (Nov 2025)
    • Pancreatic Cancer (Jul 2025)
    • Complement Biology and Therapeutics (May 2025)
    • Evolving insights into MASLD and MASH pathogenesis and treatment (Apr 2025)
    • Microbiome in Health and Disease (Feb 2025)
    • View all review series ...
  • Viewpoint
  • Collections
    • In-Press Preview
    • Clinical Research and Public Health
    • Research Letters
    • Letters to the Editor
    • Editorials
    • Commentaries
    • Editor's notes
    • Reviews
    • Viewpoints
    • 100th anniversary
    • Top read articles

  • Current issue
  • Past issues
  • Specialties
  • Reviews
  • Review series
  • ASCI Milestone Awards
  • Video Abstracts
  • Conversations with Giants in Medicine
  • In-Press Preview
  • Clinical Research and Public Health
  • Research Letters
  • Letters to the Editor
  • Editorials
  • Commentaries
  • Editor's notes
  • Reviews
  • Viewpoints
  • 100th anniversary
  • Top read articles
  • About
  • Editors
  • Consulting Editors
  • For authors
  • Journal stats
  • Publication ethics
  • Publication alerts by email
  • Advertising
  • Job board
  • Contact
Mutant SF3B1 promotes AKT- and NF-κB–driven mammary tumorigenesis
Bo Liu, Zhaoqi Liu, Sisi Chen, Michelle Ki, Caroline Erickson, Jorge S. Reis-Filho, Benjamin H. Durham, Qing Chang, Elisa de Stanchina, Yiwei Sun, Raul Rabadan, Omar Abdel-Wahab, Sarat Chandarlapaty
Bo Liu, Zhaoqi Liu, Sisi Chen, Michelle Ki, Caroline Erickson, Jorge S. Reis-Filho, Benjamin H. Durham, Qing Chang, Elisa de Stanchina, Yiwei Sun, Raul Rabadan, Omar Abdel-Wahab, Sarat Chandarlapaty
View: Text | PDF
Research Article Oncology

Mutant SF3B1 promotes AKT- and NF-κB–driven mammary tumorigenesis

  • Text
  • PDF
Abstract

Mutations in the core RNA splicing factor SF3B1 are prevalent in leukemias and uveal melanoma, but hotspot SF3B1 mutations are also seen in epithelial malignancies such as breast cancer. Although hotspot mutations in SF3B1 alter hematopoietic differentiation, whether SF3B1 mutations contribute to epithelial cancer development and progression is unknown. Here, we identify that SF3B1 mutations in mammary epithelial and breast cancer cells induce a recurrent pattern of aberrant splicing leading to activation of AKT and NF-κB, enhanced cell migration, and accelerated tumorigenesis. Transcriptomic analysis of human cancer specimens, MMTV-cre Sf3b1K700E/WT mice, and isogenic mutant cell lines identified hundreds of aberrant 3′ splice sites (3′ss) induced by mutant SF3B1. Consistently between mouse and human tumors, mutant SF3B1 promoted aberrant splicing (dependent on aberrant branchpoints as well as pyrimidines downstream of the cryptic 3′ss) and consequent suppression of PPP2R5A and MAP3K7, critical negative regulators of AKT and NF-κB. Coordinate activation of NF-κB and AKT signaling was observed in the knockin models, leading to accelerated cell migration and tumor development in combination with mutant PIK3CA but also hypersensitizing cells to AKT kinase inhibitors. These data identify hotspot mutations in SF3B1 as an important contributor to breast tumorigenesis and reveal unique vulnerabilities in cancers harboring them.

Authors

Bo Liu, Zhaoqi Liu, Sisi Chen, Michelle Ki, Caroline Erickson, Jorge S. Reis-Filho, Benjamin H. Durham, Qing Chang, Elisa de Stanchina, Yiwei Sun, Raul Rabadan, Omar Abdel-Wahab, Sarat Chandarlapaty

×

Figure 6

Aberrant splicing and downregulation of PPP2R5A by mutant SF3B1 promotes AKT activation and inflammatory signaling in breast cancer.

Options: View larger image (or click on image) Download as PowerPoint
Aberrant splicing and downregulation of PPP2R5A by mutant SF3B1 promotes...
Representative RNA-seq coverage plots showing cryptic 3′ss usage in PPP2R5A in (A) human isogenic breast cancer cell lines (MCF10A, MCF7, T47D) expressing WT or SF3B1 K700E (K700E) and human breast tumor samples from TCGA (22) as well as (B) mouse mammary epithelial cells from MMTV-cre control, MMTV-cre Sf3b1K700E/WT, MMTV-cre R26-LSL-Pik3caH1047R transgenic, and compound MMTV-cre Sf3b1K700E/WT R26-LSL-Pik3caH1047R mice. PSI value of each event is shown on the right of each coverage plot. (C) PPP2R5A mRNA expression (normalized log2RPKM values) in SF3B1 mutant (MUT) versus WT primary human breast tumors from TCGA and cell lines shown in A. Box indicates upper and lower quartiles; thick bar indicates the median value. Whiskers indicate the largest/smallest value no further than 1.5 times the interquartile range. (D) PPP2R5A, phospho- and total AKT, and p65 levels in MCF7 and MCF10A with and without mutant SF3B1 expression (EV, empty vector). Quantitation of 3 independent experiments is shown in Supplemental Figure 10A. (E) RT-PCR of PPP2R5A splicing event derived from PPP2R5A minigene with mutations at aberrant branchpoint or polypyrimidine region downstream of the aberrant 3′ss. RT-PCR of PPP2R5A splicing event derived from endogenous PPP2R5A is shown on the bottom. A schematic of sequences around the normal and aberrant branchpoint and splice site is shown on top. (F) PPP2R5A, phospho- and total AKT, and p65 levels in MCF7 and MCF10A with and without PPP2R5A shRNA knockdown. Quantitation of 3 independent experiments is shown in Supplemental Figure 10B. (G) Relative mRNA expression of IL1A, CXCL1, IL8, CDKN1A, and PPP2R5A in the cells from D and F. Mean ± standard deviation shown; asterisks represent P values of Dunnett’s test compared with shRenilla control (shRE). See also Supplemental Figures 9 and 10.

Copyright © 2026 American Society for Clinical Investigation
ISSN: 0021-9738 (print), 1558-8238 (online)

Sign up for email alerts