Development and preclinical pharmacology of a novel dCK inhibitor, DI-87
Soumya Poddar1, Edmund V Capparelli2, Ethan W Rosser3
1Department of Molecular and Medical Pharmacology, University of California Los Angeles, Los Angeles, CA, United States.
Background:
Deoxycytidine kinase (dCK) is an essential enzyme for production of nucleotides via the salvage pathway; DI-87 is a novel dCK inhibitor in preclinical development for use in anticancer therapy. The current study utilizes PET imaging to evaluate PK-PD relationships and to determine optimal dosing of the drug.
Methods:
NSG mice bearing CEM tumors had plasma and tumor PK assessed using mass spectrometry following oral administration of DI-87. dCK inhibition was assessed after a single dose of oral DI-87 followed by a [18F]CFA PET probe and PET imaging. Tumor growth inhibition was assessed by orally administering DI-87 with concurrent intraperitoneal thymidine.
Results:
DI-87 had an in vitro EC50 of 10.2 nM with low protein binding. Peak DI-87 concentrations were observed between 1-3 h and 3-9 h in plasma and tumor, respectively, with tumor concentrations less than one third of plasma. Full dCK inhibition, as evaluated by PET imaging, was observed as early as 3 h following 25 mg/kg dosing and was maintained for 12 h, with full recovery of enzyme activity after 36 h. When DI-87 was administered as repeated doses in combination with thymidine, full dCK inhibition was maintained at 12 h (25 mg/kg twice daily dose) and led to maximal tumor growth inhibition.
Conclusions:
DI-87 is a promising new compound for use in combination therapy against tumors expressing dCK. Utilizing a [18F]CFA PET probe targeting the pathway of interest allowed for efficient and accurate identification of the optimal dose for growth inhibition.
Insights
DI-87, a novel deoxycytidine kinase (dCK) inhibitor, shows promise for anticancer therapy. PET imaging confirmed optimal dosing for maximal tumor growth inhibition in preclinical models.
Area of Science:
- Pharmacology
- Oncology
- Biochemistry
Background:
- Deoxycytidine kinase (dCK) is crucial for nucleotide synthesis via the salvage pathway.
- DI-87 is an investigational dCK inhibitor developed for anticancer therapy.
- PET imaging is employed to assess drug pharmacokinetics and pharmacodynamics (PK-PD).
Purpose of the Study:
- To evaluate PK-PD relationships of DI-87 using PET imaging.
- To determine the optimal dosing strategy for DI-87 in anticancer therapy.
- To assess the efficacy of DI-87 in combination therapy.
Main Methods:
- Pharmacokinetic (PK) analysis of DI-87 in plasma and tumors of mice bearing CEM tumors via mass spectrometry.
- Assessment of dCK inhibition using a [18F]CFA PET probe after single-dose DI-87 administration.
- Evaluation of tumor growth inhibition with DI-87 combined with thymidine.
Main Results:
- DI-87 demonstrated an in vitro EC50 of 10.2 nM with low protein binding.
- Peak plasma and tumor concentrations of DI-87 were observed at 1-3h and 3-9h, respectively.
- PET imaging confirmed complete dCK inhibition from 3h to 12h post-25 mg/kg dose, with full enzyme recovery after 36h.
- Combination therapy with thymidine maintained dCK inhibition and achieved maximal tumor growth inhibition.
Conclusions:
- DI-87 is a potential therapeutic agent for dCK-expressing tumors, particularly in combination therapy.
- PET imaging effectively identified optimal dosing for DI-87-mediated tumor growth inhibition.
- The study validates DI-87's potential in preclinical anticancer applications.
More Related Videos
09:39Drug-induced Sensitization of Adenylyl Cyclase: Assay Streamlining and Miniaturization for Small Molecule and siRNA Screening Applications
Published on: January 27, 2014
08:49Identification of Mediators of T-cell Receptor Signaling via the Screening of Chemical Inhibitor Libraries
Published on: January 22, 2019
Related Concept Videos
Preclinical Development: Overview
Drug Discovery: Overview
Structure-Activity Relationships and Drug Design
SAR studies the intricate relationship between a drug's chemical structure and biological activity. It focuses on understanding how modifications to a drug's structure can influence...
Inhibition of Cdk Activity
