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Updated: Jan 18, 2026

Methods to Classify Cytoplasmic Foci as Mammalian Stress Granules
Published on: May 12, 2017
Discovery of Small Molecules That Inhibit MYC mRNA Translation Through hnRNPK and Induction of Stress
Yoni Sheinberger1, Rina Wassermann1, Jasmine Khier1
1Anima Biotech, 2 Shoham St., Ramat Gan 5251003, Israel.
Abstract:
MYC is a key oncogenic driver frequently overexpressed in non-small cell lung carcinoma (NSCLC) and other cancers, where its protein levels often exceed what would be expected from MYC mRNA levels alone, suggesting post-transcriptional regulation. Strategies to inhibit MYC function by targeting mRNA translation hold potential for therapeutics utility in Myc-dependent cancers. We developed TranslationLight, a high-content imaging platform which detects MYC mRNA translation in human cells. Using this system, we conducted a high-throughput screen of ~100,000 compounds to identify small molecules that selectively modulate MYC translation. Candidate compounds were evaluated by immunofluorescence, ribosome profiling, RNA sequencing, cellular thermal shift assays (CETSA), and subcellular localization studies of mRNA and RNA-binding proteins. We identified a lead compound, CMP76, that potently reduces Myc protein without substantially decreasing its mRNA abundance. Mechanistic investigations showed that the compound induces relocalization of MYC mRNA into stress granules, accompanied by translational silencing. CETSA identified hnRNPK as a primary protein target, and compound treatment triggered its cytoplasmic relocalization together with formation of hnRNPK-containing granules colocalizing with MYC mRNA. Analysis across cancer cell lines revealed that sensitivity to CMP76 was significantly associated with RBM42 dependency. This work establishes a novel therapeutic strategy to inhibit MYC translation mediated by hnRNPK, offering a translationally targeted approach to cancer therapy.
Insights
Researchers identified a new way to target cancer-driving MYC protein by blocking its translation, not just its mRNA. A compound called CMP76 effectively reduces MYC protein levels by trapping MYC mRNA in stress granules, offering a novel therapeutic strategy.
Area of Science:
- Molecular biology
- Oncology
- Drug discovery
Background:
- MYC oncogene overexpression drives various cancers, including non-small cell lung carcinoma (NSCLC).
- Post-transcriptional regulation influences MYC protein levels, exceeding mRNA abundance.
- Targeting MYC mRNA translation presents a therapeutic avenue for Myc-dependent cancers.
Purpose of the Study:
- To develop a platform for detecting MYC mRNA translation.
- To screen for small molecules that selectively modulate MYC translation.
- To identify novel therapeutic strategies targeting MYC translation.
Main Methods:
- Developed TranslationLight, a high-content imaging platform for MYC mRNA translation detection.
- Conducted a high-throughput screen of ~100,000 compounds.
- Utilized immunofluorescence, ribosome profiling, RNA sequencing, CETSA, and subcellular localization studies.
Main Results:
- Identified CMP76, a lead compound that reduces Myc protein without significantly affecting mRNA levels.
- CMP76 induces MYC mRNA relocalization into stress granules, leading to translational silencing.
- hnRNPK identified as a key protein target; CMP76 triggers hnRNPK relocalization and granule formation with MYC mRNA.
- CMP76 sensitivity correlated with RBM42 dependency in cancer cell lines.
Conclusions:
- Established a novel therapeutic strategy inhibiting MYC translation via hnRNPK.
- Demonstrated a translationally targeted approach for cancer therapy.
- Highlighted the potential of targeting mRNA-protein interactions for cancer treatment.
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