Diaryl Disulfides as Novel Stabilizers of Tumor Suppressor Pdcd4
Tobias Schmid1, Johanna S Blees1, Magdalena M Bajer1
1Institute of Biochemistry I, Faculty of Medicine, Goethe-University Frankfurt, 60590, Frankfurt, Germany.
Abstract:
The translation inhibitor and tumor suppressor Pdcd4 was reported to be lost in various tumors and put forward as prognostic marker in tumorigenesis. Decreased Pdcd4 protein stability due to PI3K-mTOR-p70S6K1 dependent phosphorylation of Pdcd4 followed by β-TrCP1-mediated ubiquitination, and proteasomal destruction of the protein was characterized as a major mechanism contributing to the loss of Pdcd4 expression in tumors. In an attempt to identify stabilizers of Pdcd4, we used a luciferase-based high-throughput compatible cellular assay to monitor phosphorylation-dependent proteasomal degradation of Pdcd4 in response to mitogen stimulation. Following a screen of approximately 2000 compounds, we identified 1,2-bis(4-chlorophenyl)disulfide as a novel Pdcd4 stabilizer. To determine an initial structure-activity relationship, we used 3 additional compounds, synthesized according to previous reports, and 2 commercially available compounds for further testing, in which either the linker between the aryls was modified (compounds 2-4) or the chlorine residues were replaced by groups with different electronic properties (compounds 5 and 6). We observed that those compounds with alterations in the sulfide linker completely lost the Pdcd4 stabilizing potential. In contrast, modifications in the chlorine residues showed only minor effects on the Pdcd4 stabilizing activity. A reporter with a mutated phospho-degron verified the specificity of the compounds for stabilizing the Pdcd4 reporter. Interestingly, the active diaryl disulfides inhibited proliferation and viability at concentrations where they stabilized Pdcd4, suggesting that Pdcd4 stabilization might contribute to the anti-proliferative properties. Finally, computational modelling indicated that the flexibility of the disulfide linker might be necessary to exert the biological functions of the compounds, as the inactive compound appeared to be energetically more restricted.
Insights
Researchers identified novel compounds that stabilize the tumor suppressor Pdcd4 (Programmed cell death 4). This stabilization may contribute to anti-cancer effects by inhibiting tumor cell proliferation and viability.
Area of Science:
- Oncology
- Molecular Biology
- Drug Discovery
Background:
- Programmed cell death 4 (Pdcd4) acts as a tumor suppressor and is frequently lost in various cancers.
- Pdcd4 protein levels are reduced by PI3K-mTOR-p70S6K1-dependent phosphorylation, leading to ubiquitination and proteasomal degradation.
- Identifying Pdcd4 stabilizers is crucial for developing new cancer therapies.
Purpose of the Study:
- To identify novel small molecules that stabilize Pdcd4 protein levels.
- To investigate the structure-activity relationship of identified Pdcd4 stabilizers.
- To explore the potential anti-cancer effects of Pdcd4 stabilization.
Main Methods:
- A high-throughput cellular assay using a luciferase reporter was employed to screen for Pdcd4 stabilizers.
- Approximately 2000 compounds were screened.
- Structure-activity relationship studies involved testing synthesized analogs and commercially available compounds with modifications to the diaryl disulfide structure.
Main Results:
- 1,2-bis(4-chlorophenyl)disulfide was identified as a novel Pdcd4 stabilizer.
- Modifications to the disulfide linker abolished Pdcd4 stabilizing activity, while alterations to chlorine residues had minor effects.
- Active compounds inhibited cell proliferation and viability at concentrations that stabilized Pdcd4.
- Computational modeling suggested the flexibility of the disulfide linker is important for activity.
Conclusions:
- Diaryl disulfides represent a promising class of Pdcd4 stabilizers.
- Pdcd4 stabilization by these compounds may mediate anti-proliferative and anti-viability effects in cancer cells.
- Further development of these compounds could lead to novel cancer therapeutics.
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