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Engineering Artificial Factors to Specifically Manipulate Alternative Splicing in Human Cells
Published on: April 26, 2017
Splicing factor SF3B1 is overexpressed and implicated in the aggressiveness and survival of hepatocellular carcinoma
Juan L López-Cánovas1, Mercedes Del Rio-Moreno1, Helena García-Fernandez1
1Maimónides Institute of Biomedical Research of Córdoba (IMIBIC), Córdoba, 14004, Spain; Department of Cell Biology, Physiology and Immunology, University of Córdoba, Córdoba, 14004, Spain; Reina Sofía University Hospital, Córdoba, 14004, Spain; CIBER Pathophysiology of Obesity and Nutrition (CIBERobn), Córdoba, 14004, Spain.
Abstract:
Splicing alterations represent an actionable cancer hallmark. Splicing factor 3B subunit 1 (SF3B1) is a crucial splicing factor that can be targeted pharmacologically (e.g. pladienolide-B). Here, we show that SF3B1 is overexpressed (RNA/protein) in hepatocellular carcinoma (HCC) in two retrospective (n = 154 and n = 172 samples) and in five in silico cohorts (n > 900 samples, including TCGA) and that its expression is associated with tumor aggressiveness, oncogenic splicing variants expression (KLF6-SV1, BCL-XL) and decreased overall survival. In vitro, SF3B1 silencing reduced cell viability, proliferation and migration and its pharmacological blockade with pladienolide-B inhibited proliferation, migration, and formation of tumorspheres and colonies in liver cancer cell lines (HepG2, Hep3B, SNU-387), whereas its effects on normal-like hepatocyte-derived THLE-2 proliferation were negligible. Pladienolide-B also reduced the in vivo growth and the expression of tumor-markers in Hep3B-induced xenograft tumors. Moreover, SF3B1 silencing and/or blockade markedly modulated the activation of key signaling pathways (PDK1, GSK3b, ERK, JNK, AMPK) and the expression of cancer-associated genes (CDK4, CD24) and oncogenic SVs (KLF6-SV1). Therefore, the genetic and/or pharmacological inhibition of SF3B1 may represent a promising novel therapeutic strategy worth to be explored through randomized controlled trials.
Insights
Splicing factor SF3B1 is overexpressed in liver cancer, promoting tumor growth. Inhibiting SF3B1, a potential therapeutic target, reduced cancer cell proliferation and tumor growth in preclinical models.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Therapeutics
Background:
- Splicing alterations are key cancer mechanisms.
- SF3B1 is a critical splicing factor with therapeutic potential.
- SF3B1 is implicated in various cancers.
Purpose of the Study:
- To investigate SF3B1 expression in hepatocellular carcinoma (HCC).
- To evaluate the therapeutic potential of SF3B1 inhibition in HCC.
- To explore SF3B1's role in HCC progression and signaling pathways.
Main Methods:
- SF3B1 expression analysis in retrospective and in silico HCC cohorts.
- In vitro studies involving SF3B1 silencing and pladienolide-B treatment in liver cancer cell lines.
- In vivo xenograft studies to assess the efficacy of pladienolide-B.
- Analysis of signaling pathways and gene expression modulation.
Main Results:
- SF3B1 is overexpressed in HCC, correlating with aggressiveness and poor survival.
- SF3B1 inhibition (silencing or pladienolide-B) reduced HCC cell viability, proliferation, and migration.
- Pladienolide-B demonstrated efficacy in reducing tumor growth in vivo with minimal effects on normal cells.
- SF3B1 modulation impacted key signaling pathways and cancer-associated genes.
Conclusions:
- SF3B1 is a promising therapeutic target for HCC.
- Pharmacological inhibition of SF3B1 with pladienolide-B shows significant anti-cancer effects.
- Targeting SF3B1 represents a novel therapeutic strategy for hepatocellular carcinoma.
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