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Updated: May 28, 2026

Identification of MyoD Interactome Using Tandem Affinity Purification Coupled to Mass Spectrometry
Published on: May 17, 2016
E-box-independent regulation of transcription and differentiation by MYC
Iris Uribesalgo1, Marcus Buschbeck, Arantxa Gutiérrez
1Centre de Regulació Genòmica and UPF, Barcelona 08003, Spain.
Abstract:
MYC proto-oncogene is a key player in cell homeostasis that is commonly deregulated in human carcinogenesis(1). MYC can either activate or repress target genes by forming a complex with MAX (ref. 2). MYC also exerts MAX-independent functions that are not yet fully characterized(3). Cells possess an intrinsic pathway that can abrogate MYC-MAX dimerization and E-box interaction, by inducing phosphorylation of MYC in a PAK2-dependent manner at three residues located in its helix-loop-helix domain(4). Here we show that these carboxy-terminal phosphorylation events switch MYC from an oncogenic to a tumour-suppressive function. In undifferentiated cells, MYC-MAX is targeted to the promoters of retinoic-acid-responsive genes by its direct interaction with the retinoic acid receptor-α (RARα). MYC-MAX cooperates with RARα to repress genes required for differentiation, in an E-box-independent manner. Conversely, on C-terminal phosphorylation of MYC during differentiation, the complex switches from a repressive to an activating function, by releasing MAX and recruiting transcriptional co-activators. Phospho-MYC synergizes with retinoic acid to eliminate circulating leukaemic cells and to decrease the level of tumour invasion. Our results identify an E-box-independent mechanism for transcriptional regulation by MYC that unveils previously unknown functions for MYC in differentiation. These may be exploited to develop alternative targeted therapies.
Insights
Phosphorylation of the MYC proto-oncogene switches its function from oncogenic to tumor-suppressive, impacting cell differentiation and potentially offering new cancer therapies.
Area of Science:
- Molecular Biology
- Oncology
- Cellular Homeostasis
Background:
- The MYC proto-oncogene is crucial for cell homeostasis but is frequently deregulated in human cancers.
- MYC regulates target genes through MAX-dependent and MAX-independent mechanisms.
- Cellular pathways exist to inhibit MYC-MAX dimerization via MYC phosphorylation.
Purpose of the Study:
- To investigate the role of MYC carboxy-terminal phosphorylation in regulating MYC function.
- To elucidate the MAX-independent functions of MYC in cell differentiation.
- To explore the therapeutic potential of MYC phosphorylation in cancer treatment.
Main Methods:
- Analysis of MYC phosphorylation at specific residues in the helix-loop-helix domain.
- Investigation of MYC-MAX interaction with retinoic acid receptor-α (RARα).
- Assessment of MYC's role in regulating differentiation-related genes.
Main Results:
- Carboxy-terminal phosphorylation of MYC switches its function from oncogenic to tumor-suppressive.
- Phospho-MYC, in complex with RARα, represses differentiation genes in an E-box-independent manner.
- Phospho-MYC synergizes with retinoic acid to eliminate leukemia cells and reduce tumor invasion.
Conclusions:
- MYC phosphorylation represents an E-box-independent transcriptional regulation mechanism.
- MYC plays previously unrecognized roles in cell differentiation.
- Targeting MYC phosphorylation could offer novel therapeutic strategies for cancer.
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