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Identification of MyoD Interactome Using Tandem Affinity Purification Coupled to Mass Spectrometry
Published on: May 17, 2016
MYC phosphorylation at novel regulatory regions suppresses transforming activity
Amanda R Wasylishen1, Michelle Chan-Seng-Yue, Christina Bros
1Authors' Affiliations: Department of Medical Biophysics, University of Toronto; Ontario Cancer Institute, Campbell Family Institute for Cancer Research, Princess Margaret Cancer Centre; and Ontario Institute for Cancer Research, Toronto, Ontario, Canada.
Abstract:
Despite its central role in human cancer, MYC deregulation is insufficient by itself to transform cells. Because inherent mechanisms of neoplastic control prevent precancerous lesions from becoming fully malignant, identifying transforming alleles of MYC that bypass such controls may provide fundamental insights into tumorigenesis. To date, the only activated allele of MYC known is T58A, the study of which led to identification of the tumor suppressor FBXW7 and its regulator USP28 as a novel therapeutic target. In this study, we screened a panel of MYC phosphorylation mutants for their ability to promote anchorage-independent colony growth of human MCF10A mammary epithelial cells, identifying S71A/S81A and T343A/S344A/S347A/S348A as more potent oncogenic mutants compared with wild-type (WT) MYC. The increased cell-transforming activity of these mutants was confirmed in SH-EP neuroblastoma cells and in three-dimensional MCF10A acini. Mechanistic investigations initiated by a genome-wide mRNA expression analysis of MCF10A acini identified 158 genes regulated by the mutant MYC alleles, compared with only 112 genes regulated by both WT and mutant alleles. Transcriptional gain-of-function was a common feature of the mutant alleles, with many additional genes uniquely dysregulated by individual mutant. Our work identifies novel sites of negative regulation in MYC and thus new sites for its therapeutic attack.
Insights
New MYC mutants, S71A/S81A and T343A/S344A/S347A/S348A, show enhanced oncogenic activity, revealing novel therapeutic targets for cancer by bypassing normal cellular controls.
Area of Science:
- Oncogenesis
- Molecular Biology
- Cancer Research
Background:
- MYC deregulation is crucial in human cancer but insufficient for cell transformation alone.
- Understanding MYC's transforming alleles is key to overcoming neoplastic control mechanisms.
- The T58A MYC allele identified FBXW7 and USP28 as therapeutic targets.
Purpose of the Study:
- To identify novel MYC alleles with enhanced transforming potential.
- To investigate the mechanisms by which these mutants promote tumorigenesis.
- To discover new therapeutic targets for MYC-driven cancers.
Main Methods:
- Screening of MYC phosphorylation mutants for anchorage-independent growth in MCF10A cells.
- Validation of oncogenic activity in neuroblastoma cells and 3D acini models.
- Genome-wide mRNA expression analysis to identify MYC-regulated genes.
Main Results:
- S71A/S81A and T343A/S344A/S347A/S348A MYC mutants exhibited greater transforming activity than wild-type MYC.
- These mutants showed increased cell transformation in multiple cancer cell lines and models.
- Mutant MYC alleles uniquely dysregulated a significant number of genes, indicating a transcriptional gain-of-function.
Conclusions:
- Novel MYC phosphorylation sites (S71, S81, T343, S344, S347, S348) are critical for its oncogenic function.
- These findings identify new sites for therapeutic intervention in MYC-driven cancers.
- Understanding these novel regulatory sites offers new avenues for cancer treatment.
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