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Discovery of a New STAT3 Inhibitor Acting on the Linker Domain
Tatsuya Koseki1, Naoya Suehiro1, Yoshiaki Masuda1
1Center for Drug Discovery, Graduate Division of Pharmaceutical Sciences, University of Shizuoka.
Abstract:
Signal transducer and activator of transcription 3 (STAT3) is a latent transcription factor that contributes to tumor cell growth and survival and is often constitutively active in several types of cancers, which makes it an attractive target for cancer therapy. We identified 5,5'-(pentane-1,5'-diyl)bis(2-methyl-1,4-benzoquinone) (BPMB) as a new STAT3 inhibitor. BPMB inhibited the transcriptional activities of STAT3, despite its inability to reduce the phosphorylation and nuclear translocation of STAT3. BPMB selectively inhibited the proliferation of human breast cancer cell lines with constitutively activated STAT3. Furthermore, a gel retardation pattern was obtained by immunoblotting only when those STAT3-activated cell lines were treated with BPMB. The shifted bands could be immunoblotted with anti-STAT3 antibody but not with anti-STAT1/STAT5 antibody, and were stable under reducing conditions. The purified recombinant STAT3 protein treated with BPMB afforded a similar band shift pattern. Matrix-assisted laser desorption/ionization-mass spectrometry analysis of the component comprising the main shifted band suggested that the complex is a STAT3 homodimer crosslinked by BPMB through a Michael addition with Cys550 in the linker domain. Alanine replacement at this position resulted in reduction of the STAT3 dimer formation in the gel retardation assay. Thus, our results suggest that BPMB inhibits the proliferation of STAT3-activated cell lines, presumably through acylation of the linker domain and subsequent induction of the inactive STAT3 complexes.
Insights
A novel compound, BPMB, inhibits cancer cell growth by targeting Signal Transducer and Activator of Transcription 3 (STAT3). BPMB forms inactive STAT3 complexes, offering a new therapeutic strategy for STAT3-activated cancers.
Area of Science:
- Oncology
- Molecular Biology
- Biochemistry
Background:
- Signal transducer and activator of transcription 3 (STAT3) is crucial for tumor cell growth and survival.
- Constitutive STAT3 activation is common in various cancers, making it a therapeutic target.
Purpose of the Study:
- To identify and characterize a novel inhibitor of STAT3 transcriptional activity.
- To investigate the mechanism of action of the identified inhibitor, BPMB.
Main Methods:
- Inhibition of STAT3 transcriptional activity assays.
- Cell proliferation assays in human breast cancer cell lines.
- Gel retardation assays and immunoblotting.
- Mass spectrometry analysis.
- Site-directed mutagenesis of STAT3.
Main Results:
- BPMB inhibited STAT3 transcriptional activity without affecting STAT3 phosphorylation or nuclear translocation.
- BPMB selectively inhibited proliferation in STAT3-activated breast cancer cell lines.
- BPMB induced STAT3 homodimerization via Michael addition with Cys550 in the linker domain, forming inactive complexes.
Conclusions:
- BPMB is a novel STAT3 inhibitor that targets STAT3-activated cancer cells.
- BPMB's mechanism involves crosslinking STAT3 monomers into inactive homodimers through Cys550.
- BPMB represents a potential therapeutic agent for cancers with constitutively active STAT3.
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