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Identification of antimycin A as a c-Myc degradation accelerator via high-throughput screening
Ziyu Liu1, Kosuke Ishikawa2, Emiko Sanada3
1Bioprobe Application Research Unit, RIKEN CSRS, Wako, Saitama, Japan; Graduate School of Medical and Dental Sciences, Tokyo Medical and Dental University, Bunkyo-ku, Tokyo, Japan.
Abstract:
c-Myc is a critical regulator of cell proliferation and growth. Elevated levels of c-Myc cause transcriptional amplification, leading to various types of cancers. Small molecules that specifically inhibit c-Myc-dependent regulation are potentially invaluable for anticancer therapy. Because c-Myc does not have enzymatic activity or targetable pockets, researchers have attempted to obtain small molecules that inhibit c-Myc cofactors, activate c-Myc repressors, or target epigenetic modifications to regulate the chromatin of c-Myc-addicted cancer without any clinical success. In this study, we screened for c-Myc inhibitors using a cell-dependent assay system in which the expression of c-Myc and its transcriptional activity can be inferred from monomeric Keima and enhanced GFP fluorescence, respectively. We identified one mitochondrial inhibitor, antimycin A, as a hit compound. The compound enhanced the c-Myc phosphorylation of threonine-58, consequently increasing the proteasome-mediated c-Myc degradation. The mechanistic analysis of antimycin A revealed that it enhanced the degradation of c-Myc protein through the activation of glycogen synthetic kinase 3 by reactive oxygen species (ROS) from damaged mitochondria. Furthermore, we found that the inhibition of cell growth by antimycin A was caused by both ROS-dependent and ROS-independent pathways. Interestingly, ROS-dependent growth inhibition occurred only in the presence of c-Myc, which may reflect the representative features of cancer cells. Consistently, the antimycin A sensitivity of cells was correlated to the endogenous c-Myc levels in various cancer cells. Overall, our study provides an effective strategy for identifying c-Myc inhibitors and proposes a novel concept for utilizing ROS inducers for cancer therapy.
Insights
Researchers identified antimycin A as a novel c-Myc inhibitor. This mitochondrial inhibitor triggers reactive oxygen species (ROS) to degrade c-Myc, offering a new strategy for cancer therapy.
Area of Science:
- Oncology
- Molecular Biology
- Biochemistry
Background:
- c-Myc is a key regulator of cell proliferation, and its overexpression drives cancer.
- Targeting c-Myc directly is challenging due to its lack of enzymatic activity and pockets.
- Previous attempts to inhibit c-Myc indirectly have not yielded clinical success.
Purpose of the Study:
- To screen for novel small molecules that inhibit c-Myc-dependent transcriptional regulation.
- To identify potential therapeutic strategies for c-Myc-driven cancers.
Main Methods:
- Utilized a cell-based assay system measuring c-Myc expression and transcriptional activity via fluorescence.
- Screened for inhibitors using a library of compounds.
- Conducted mechanistic studies to elucidate the mode of action of identified inhibitors.
Main Results:
- Identified antimycin A, a mitochondrial inhibitor, as a potent c-Myc inhibitor.
- Antimycin A enhances c-Myc phosphorylation and subsequent proteasomal degradation.
- The drug induces reactive oxygen species (ROS) from damaged mitochondria, activating GSK3β and promoting c-Myc degradation.
- Cell growth inhibition by antimycin A involves both ROS-dependent and independent pathways, with ROS-dependent effects specific to c-Myc-positive cells.
- Antimycin A sensitivity correlates with endogenous c-Myc levels in cancer cells.
Conclusions:
- Developed an effective strategy for identifying c-Myc inhibitors.
- Antimycin A represents a novel therapeutic candidate for c-Myc-driven cancers.
- Proposes a new therapeutic concept utilizing ROS inducers for cancer treatment.

