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Updated: Apr 4, 2026

Using RNA-sequencing to Detect Novel Splice Variants Related to Drug Resistance in In Vitro Cancer Models
Published on: December 9, 2016
The spliceosome is a therapeutic vulnerability in MYC-driven cancer
Tiffany Y-T Hsu1,2,3,4, Lukas M Simon4, Nicholas J Neill1,4
1Verna &Marrs McLean Department of Biochemistry and Molecular Biology, Baylor College of Medicine, Houston, Texas 77030, USA.
Abstract:
MYC (also known as c-MYC) overexpression or hyperactivation is one of the most common drivers of human cancer. Despite intensive study, the MYC oncogene remains recalcitrant to therapeutic inhibition. MYC is a transcription factor, and many of its pro-tumorigenic functions have been attributed to its ability to regulate gene expression programs. Notably, oncogenic MYC activation has also been shown to increase total RNA and protein production in many tissue and disease contexts. While such increases in RNA and protein production may endow cancer cells with pro-tumour hallmarks, this increase in synthesis may also generate new or heightened burden on MYC-driven cancer cells to process these macromolecules properly. Here we discover that the spliceosome is a new target of oncogenic stress in MYC-driven cancers. We identify BUD31 as a MYC-synthetic lethal gene in human mammary epithelial cells, and demonstrate that BUD31 is a component of the core spliceosome required for its assembly and catalytic activity. Core spliceosomal factors (such as SF3B1 and U2AF1) associated with BUD31 are also required to tolerate oncogenic MYC. Notably, MYC hyperactivation induces an increase in total precursor messenger RNA synthesis, suggesting an increased burden on the core spliceosome to process pre-mRNA. In contrast to normal cells, partial inhibition of the spliceosome in MYC-hyperactivated cells leads to global intron retention, widespread defects in pre-mRNA maturation, and deregulation of many essential cell processes. Notably, genetic or pharmacological inhibition of the spliceosome in vivo impairs survival, tumorigenicity and metastatic proclivity of MYC-dependent breast cancers. Collectively, these data suggest that oncogenic MYC confers a collateral stress on splicing, and that components of the spliceosome may be therapeutic entry points for aggressive MYC-driven cancers.
Insights
MYC overexpression stresses the spliceosome, a key machinery for RNA processing. Inhibiting the spliceosome selectively harms MYC-driven cancer cells, offering new therapeutic targets.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Genetics
Background:
- MYC (c-MYC) is a common driver of human cancers, but remains difficult to inhibit therapeutically.
- Oncogenic MYC increases RNA and protein synthesis, potentially creating a burden on cellular machinery.
- The spliceosome, responsible for RNA processing, is investigated as a potential target in MYC-driven cancers.
Purpose of the Study:
- To identify new therapeutic targets for MYC-driven cancers.
- To investigate the role of the spliceosome in MYC-driven oncogenesis.
- To explore the synthetic lethality between MYC and spliceosome components.
Main Methods:
- Identification of BUD31 as a MYC-synthetic lethal gene in human mammary epithelial cells.
- Characterization of BUD31 as a core spliceosome component.
- Assessment of spliceosome function under MYC hyperactivation in vitro and in vivo.
- Genetic and pharmacological inhibition of spliceosome components.
Main Results:
- BUD31 is essential for spliceosome assembly and activity, and its inhibition is lethal in MYC-overexpressing cells.
- MYC hyperactivation increases precursor messenger RNA synthesis, stressing the spliceosome.
- Spliceosome inhibition in MYC-hyperactivated cells causes global intron retention and defects in pre-mRNA maturation.
- Inhibition of the spliceosome impairs the survival, tumorigenicity, and metastasis of MYC-dependent breast cancers.
Conclusions:
- Oncogenic MYC induces a collateral stress on the spliceosome.
- The spliceosome represents a novel therapeutic vulnerability in MYC-driven cancers.
- Targeting spliceosome components offers a promising strategy for treating aggressive MYC-dependent malignancies.
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