The Tankyrase Inhibitor OM-153 Demonstrates Antitumor Efficacy and a Therapeutic Window in Mouse Models
Shoshy A Brinch1,2, Enya Amundsen-Isaksen1,2, Sandra Espada1,2
1Department of Immunology and Transfusion Medicine, Oslo University Hospital, Rikshospitalet, Oslo, Norway.
Abstract:
The catalytic enzymes tankyrase 1 and 2 (TNKS1/2) alter protein turnover by poly-ADP-ribosylating target proteins, which earmark them for degradation by the ubiquitin-proteasomal system. Prominent targets of the catalytic activity of TNKS1/2 include AXIN proteins, resulting in TNKS1/2 being attractive biotargets for addressing of oncogenic WNT/β-catenin signaling. Although several potent small molecules have been developed to inhibit TNKS1/2, there are currently no TNKS1/2 inhibitors available in clinical practice. The development of tankyrase inhibitors has mainly been disadvantaged by concerns over biotarget-dependent intestinal toxicity and a deficient therapeutic window. Here we show that the novel, potent, and selective 1,2,4-triazole-based TNKS1/2 inhibitor OM-153 reduces WNT/β-catenin signaling and tumor progression in COLO 320DM colon carcinoma xenografts upon oral administration of 0.33-10 mg/kg twice daily. In addition, OM-153 potentiates anti-programmed cell death protein 1 (anti-PD-1) immune checkpoint inhibition and antitumor effect in a B16-F10 mouse melanoma model. A 28-day repeated dose mouse toxicity study documents body weight loss, intestinal damage, and tubular damage in the kidney after oral-twice daily administration of 100 mg/kg. In contrast, mice treated oral-twice daily with 10 mg/kg show an intact intestinal architecture and no atypical histopathologic changes in other organs. In addition, clinical biochemistry and hematologic analyses do not identify changes indicating substantial toxicity. The results demonstrate OM-153-mediated antitumor effects and a therapeutic window in a colon carcinoma mouse model ranging from 0.33 to at least 10 mg/kg, and provide a framework for using OM-153 for further preclinical evaluations.
Significance:
This study uncovers the effectiveness and therapeutic window for a novel tankyrase inhibitor in mouse tumor models.
Insights
A novel tankyrase inhibitor, OM-153, effectively reduces tumor progression and enhances immunotherapy in mouse models. OM-153 demonstrates a promising therapeutic window with manageable toxicity, paving the way for further preclinical development.
Area of Science:
- Oncology
- Pharmacology
- Molecular Biology
Background:
- Tankyrase 1 and 2 (TNKS1/2) enzymes regulate protein turnover and are implicated in oncogenic WNT/β-catenin signaling.
- Existing TNKS1/2 inhibitors face challenges with biotarget-dependent toxicity and limited therapeutic windows.
- AXIN proteins are key targets of TNKS1/2, making them attractive targets for cancer therapy.
Purpose of the Study:
- To evaluate the efficacy and safety of a novel 1,2,4-triazole-based TNKS1/2 inhibitor, OM-153.
- To determine the therapeutic window of OM-153 in preclinical cancer models.
- To assess the potential of OM-153 in combination with immune checkpoint inhibitors.
Main Methods:
- Administration of OM-153 to COLO 320DM colon carcinoma xenografts and B16-F10 melanoma mouse models.
- Evaluation of WNT/β-catenin signaling, tumor progression, and antitumor effects.
- Conducting a 28-day repeated dose toxicity study in mice to assess safety and identify a therapeutic window.
Main Results:
- OM-153 significantly reduced WNT/β-catenin signaling and tumor progression in colon carcinoma xenografts.
- OM-153 enhanced the antitumor effect of anti-programmed cell death protein 1 (anti-PD-1) therapy in melanoma models.
- A therapeutic window for OM-153 was established, with doses up to 10 mg/kg twice daily showing efficacy without significant toxicity in mice.
Conclusions:
- OM-153 is a potent and selective TNKS1/2 inhibitor with demonstrated antitumor activity.
- OM-153 exhibits a favorable therapeutic window in preclinical models, suggesting potential for clinical development.
- OM-153 warrants further investigation for its potential in cancer therapy, including combination strategies with immunotherapy.
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