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Published on: May 10, 2022
Novel tropolones induce the unfolded protein response pathway and apoptosis in multiple myeloma cells
Staci L Haney1, Cheryl Allen2, Michelle L Varney1
1Department of Internal Medicine, University of Nebraska Medical Center, Omaha, NE, USA.
Abstract:
Tropolones are small organic compounds with metal-directing moieties. Tropolones inhibit the proliferation of cancer cell lines, possibly through their effects on metalloenzymes such as select histone deacetylases (HDACs). Pan-HDAC inhibitors are therapeutically beneficial in the treatment of multiple myeloma, however there is interest in the use of more selective HDAC inhibitor therapy to minimize adverse side effects. We hypothesized that tropolones might have anti-myeloma activities. To this end, a series of novel α-substituted tropolones were evaluated for effects on multiple myeloma cells. While all tested tropolones showed some level of cytotoxicity, MO-OH-Nap had consistently low IC50 values between 1-11 μM in all three cell lines tested and was used for subsequent experiments. MO-OH-Nap was found to induce apoptosis in a concentration-dependent manner. Time course experiments demonstrated that MO-OH-Nap promotes caspase cleavage in a time frame that was distinct from the pan-HDAC inhibitor suberoylanilide hydroxamic acid (SAHA). Furthermore, MO-OH-Nap- and SAHA-treated cells possess unique gene expression patterns, suggesting they promote apoptosis via different mechanisms. In particular, MO-OH-Nap increases the expression of markers associated with endoplasmic reticulum stress and the unfolded protein response. Synergistic cytotoxic effects were observed when cells were treated with the combination of MO-OH-Nap and the proteasome inhibitor bortezomib. However, treatment with MO-OH-Nap did not abrogate the bortezomib-induced increase in aggresomes, consistent with an HDAC6-independent mechanism for the observed synergy. Collectively, these finding support further investigation into the usefulness of α-substituted tropolones as anti-myeloma agents.
Insights
Novel tropolones, including MO-OH-Nap, show anti-myeloma activity by inducing apoptosis and endoplasmic reticulum stress. These compounds may offer a new therapeutic strategy for multiple myeloma treatment.
Area of Science:
- Medicinal Chemistry
- Cancer Biology
- Pharmacology
Background:
- Tropolones are organic compounds with metal-binding properties.
- Tropolones inhibit cancer cell proliferation, potentially via histone deacetylase (HDAC) inhibition.
- Selective HDAC inhibitors are sought to minimize side effects in multiple myeloma treatment.
Purpose of the Study:
- To investigate the anti-myeloma activity of novel α-substituted tropolones.
- To evaluate the mechanism of action of promising tropolone derivatives in multiple myeloma cells.
Main Methods:
- Synthesis and evaluation of novel α-substituted tropolones against multiple myeloma cell lines.
- Assessment of cytotoxicity (IC50 values), apoptosis induction, and caspase cleavage.
- Gene expression analysis and investigation of endoplasmic reticulum stress markers.
- Combination studies with bortezomib to assess synergistic effects.
Main Results:
- MO-OH-Nap demonstrated consistent cytotoxicity (1-11 μM IC50) and induced apoptosis concentration-dependently.
- MO-OH-Nap exhibited a distinct caspase cleavage profile compared to SAHA, suggesting a different mechanism.
- Gene expression analysis revealed MO-OH-Nap induces endoplasmic reticulum stress and unfolded protein response.
- Synergistic cytotoxicity was observed with MO-OH-Nap and bortezomib, independent of HDAC6.
Conclusions:
- α-substituted tropolones, particularly MO-OH-Nap, possess significant anti-myeloma activity.
- MO-OH-Nap induces apoptosis through mechanisms involving endoplasmic reticulum stress.
- These findings support the potential of tropolones as a novel therapeutic approach for multiple myeloma.
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