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Updated: Jun 16, 2026

Identification of MyoD Interactome Using Tandem Affinity Purification Coupled to Mass Spectrometry
Published on: May 17, 2016
Suppression of Myc oncogenic activity by ribosomal protein haploinsufficiency
Maria Barna1, Aya Pusic, Ornella Zollo
1Department of Biochemistry & Biophysics, University of California San Francisco, Rock Hall Room 384C, 1550 Fourth Street, San Francisco, California 94158-2517, USA. maria.barna@ucsf.edu
Abstract:
The Myc oncogene regulates the expression of several components of the protein synthetic machinery, including ribosomal proteins, initiation factors of translation, RNA polymerase III and ribosomal DNA. Whether and how increasing the cellular protein synthesis capacity affects the multistep process leading to cancer remains to be addressed. Here we use ribosomal protein heterozygote mice as a genetic tool to restore increased protein synthesis in Emu-Myc/+ transgenic mice to normal levels, and show that the oncogenic potential of Myc in this context is suppressed. Our findings demonstrate that the ability of Myc to increase protein synthesis directly augments cell size and is sufficient to accelerate cell cycle progression independently of known cell cycle targets transcriptionally regulated by Myc. In addition, when protein synthesis is restored to normal levels, Myc-overexpressing precancerous cells are more efficiently eliminated by programmed cell death. Our findings reveal a new mechanism that links increases in general protein synthesis rates downstream of an oncogenic signal to a specific molecular impairment in the modality of translation initiation used to regulate the expression of selective messenger RNAs. We show that an aberrant increase in cap-dependent translation downstream of Myc hyperactivation specifically impairs the translational switch to internal ribosomal entry site (IRES)-dependent translation that is required for accurate mitotic progression. Failure of this translational switch results in reduced mitotic-specific expression of the endogenous IRES-dependent form of Cdk11 (also known as Cdc2l and PITSLRE), which leads to cytokinesis defects and is associated with increased centrosome numbers and genome instability in Emu-Myc/+ mice. When accurate translational control is re-established in Emu-Myc/+ mice, genome instability is suppressed. Our findings demonstrate how perturbations in translational control provide a highly specific outcome for gene expression, genome stability and cancer initiation that have important implications for understanding the molecular mechanism of cancer formation at the post-genomic level.
Insights
Myc oncogene boosts protein synthesis, increasing cell size and accelerating cancer. Restoring normal protein synthesis suppresses Myc
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- The Myc oncogene controls protein synthesis machinery, impacting cell growth and cancer development.
- The precise role of elevated protein synthesis capacity in cancer progression remains unclear.
Purpose of the Study:
- To investigate how restoring normal protein synthesis affects Myc-driven oncogenesis.
- To elucidate the molecular mechanisms linking Myc, protein synthesis, and cancer initiation.
Main Methods:
- Utilized ribosomal protein heterozygote mice to normalize protein synthesis in Emu-Myc/+ transgenic mice.
- Assessed cell size, cell cycle progression, programmed cell death, and translational control.
- Investigated the switch between cap-dependent and internal ribosomal entry site (IRES)-dependent translation.
Main Results:
- Restoring normal protein synthesis suppressed Myc's oncogenic potential and reduced cell size and cycle acceleration.
- Myc-overexpressing precancerous cells showed increased programmed cell death when protein synthesis was normalized.
- Myc hyperactivation impaired the translational switch to IRES-dependent translation, affecting Cdk11 expression, mitotic progression, and genome stability.
Conclusions:
- Elevated protein synthesis directly augments cell size and accelerates cell cycle progression, contributing to Myc's oncogenic potential.
- Aberrant cap-dependent translation downstream of Myc hyperactivation specifically impairs IRES-dependent translation, leading to genomic instability.
- Restoring accurate translational control suppresses genome instability, highlighting its critical role in cancer initiation.
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