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Updated: Mar 30, 2026

Focus Formation: A Cell-based Assay to Determine the Oncogenic Potential of a Gene
Published on: December 31, 2014
Interaction of MYC with host cell factor-1 is mediated by the evolutionarily conserved Myc box IV motif
L R Thomas1, A M Foshage1, A M Weissmiller1
1Department of Cell and Developmental Biology, Vanderbilt University School of Medicine, Nashville, TN, USA.
Abstract:
The MYC family of oncogenes encodes a set of three related transcription factors that are overexpressed in many human tumors and contribute to the cancer-related deaths of more than 70,000 Americans every year. MYC proteins drive tumorigenesis by interacting with co-factors that enable them to regulate the expression of thousands of genes linked to cell growth, proliferation, metabolism and genome stability. One effective way to identify critical co-factors required for MYC function has been to focus on sequence motifs within MYC that are conserved throughout evolution, on the assumption that their conservation is driven by protein-protein interactions that are vital for MYC activity. In addition to their DNA-binding domains, MYC proteins carry five regions of high sequence conservation known as Myc boxes (Mb). To date, four of the Mb motifs (MbI, MbII, MbIIIa and MbIIIb) have had a molecular function assigned to them, but the precise role of the remaining Mb, MbIV, and the reason for its preservation in vertebrate Myc proteins, is unknown. Here, we show that MbIV is required for the association of MYC with the abundant transcriptional coregulator host cell factor-1 (HCF-1). We show that the invariant core of MbIV resembles the tetrapeptide HCF-binding motif (HBM) found in many HCF-interaction partners, and demonstrate that MYC interacts with HCF-1 in a manner indistinguishable from the prototypical HBM-containing protein VP16. Finally, we show that rationalized point mutations in MYC that disrupt interaction with HCF-1 attenuate the ability of MYC to drive tumorigenesis in mice. Together, these data expose a molecular function for MbIV and indicate that HCF-1 is an important co-factor for MYC.
Insights
The MYC oncogene
Area of Science:
- Oncogenes and Cancer Biology
- Molecular Mechanisms of Transcription Regulation
Background:
- MYC oncogenes are overexpressed in numerous human tumors, driving cancer progression.
- MYC proteins regulate gene expression via interactions with co-factors, influencing cell growth, metabolism, and genome stability.
- Five conserved Myc box (Mb) motifs are present in MYC proteins, but the function of MbIV remains unassigned.
Purpose of the Study:
- To elucidate the molecular function of the conserved Myc box IV (MbIV) motif in MYC proteins.
- To investigate the role of MbIV in MYC's interaction with transcriptional co-regulators.
- To determine if MbIV-mediated interactions are critical for MYC's oncogenic activity.
Main Methods:
- Comparative sequence analysis to identify conserved motifs within MYC.
- Biochemical assays to assess protein-protein interactions between MYC and host cell factor-1 (HCF-1).
- Site-directed mutagenesis of the MbIV motif and evaluation of MYC's oncogenic function in murine models.
Main Results:
- The MbIV motif of MYC was identified as essential for binding to the transcriptional co-regulator HCF-1.
- The invariant core of MbIV shares similarity with the HCF-binding motif (HBM) found in other HCF-1 interacting proteins.
- Mutations disrupting the MYC-HCF-1 interaction attenuated MYC's ability to promote tumorigenesis in mice.
Conclusions:
- The MbIV motif mediates the interaction between MYC and HCF-1, revealing a previously unknown molecular function for MbIV.
- Host cell factor-1 (HCF-1) is identified as a critical co-factor for MYC's oncogenic functions.
- Targeting the MYC-HCF-1 interaction may represent a novel therapeutic strategy for MYC-driven cancers.
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