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Published on: October 11, 2017
Radiosynthesis and Evaluation of Talazoparib and Its Derivatives as PARP-1-Targeting Agents
Dong Zhou1, Huaping Chen1, Cedric Mpoy2
1Department of Radiology, School of Medicine, Washington University in Saint Louis, Saint Louis, MO 63110, USA.
Abstract:
Poly (ADP-ribose) polymerase-1 (PARP-1) is a critical enzyme in the DNA repair process and the target of several FDA-approved inhibitors. Several of these inhibitors have been radiolabeled for non-invasive imaging of PARP-1 expression or targeted radiotherapy of PARP-1 expressing tumors. In particular, derivatives of olaparib and rucaparib, which have reduced trapping potency by PARP-1 compared to talazoparib, have been radiolabeled for these purposes. Here, we report the first radiosynthesis of [18F]talazoparib and its in vitro and in vivo evaluation. Talazoparib (3a″) and its bromo- or iodo-derivatives were synthesized as racemic mixtures (3a, 3b and 3c), and these compounds exhibit high affinity to PARP-1 (Ki for talazoparib (3a″): 0.65 ± 0.07 nM; 3a: 2.37 ± 0.56 nM; 3b: 1.92 ± 0.41 nM; 3c: 1.73 ± 0.43 nM; known PARP-1 inhibitor Olaparib: 1.87 ± 0.10 nM; non-PARP-1 compound Raclopride: >20,000 nM) in a competitive binding assay using a tritium-labeled PARP-1 radioligand [3H]WC-DZ for screening. [18F]Talazoparib (3a″) was radiosynthesized via a multiple-step procedure with good radiochemical and chiral purities (98%) and high molar activity (28 GBq/μmol). The preliminary biodistribution studies in the murine PC-3 tumor model showed that [18F]talazoparib had a good level of tumor uptake that persisted for over 8 h (3.78 ± 0.55 %ID/gram at 4 h and 4.52 ± 0.32 %ID/gram at 8 h). These studies show the potential for the bromo- and iodo- derivatives for PARP-1 targeted radiotherapy studies using therapeutic radionuclides.
Insights
Researchers report the first radiosynthesis of [18F]talazoparib, a potent Poly (ADP-ribose) polymerase-1 (PARP-1) inhibitor. This development shows promise for non-invasive imaging and targeted radiotherapy of PARP-1 expressing tumors.
Area of Science:
- Radiochemistry
- Molecular Imaging
- Oncology
Background:
- Poly (ADP-ribose) polymerase-1 (PARP-1) is a key enzyme in DNA repair and a target for cancer therapy.
- Radiolabeled PARP-1 inhibitors are used for imaging and radiotherapy of PARP-1 expressing tumors.
- Talazoparib is a potent PARP-1 inhibitor, but its radiolabeled form has not been previously reported.
Purpose of the Study:
- To report the radiosynthesis and evaluation of [18F]talazoparib.
- To assess the in vitro and in vivo characteristics of [18F]talazoparib for potential use in cancer imaging and therapy.
- To explore the potential of bromo- and iodo-derivatives for targeted radiotherapy.
Main Methods:
- Synthesis of talazoparib and its bromo-/iodo-derivatives.
- Competitive binding assays using [3H]WC-DZ to determine affinity to PARP-1.
- Radiosynthesis of [18F]talazoparib.
- In vitro and in vivo biodistribution studies in a murine PC-3 tumor model.
Main Results:
- Talazoparib and its derivatives showed high affinity to PARP-1 (Ki values in nM range).
- [18F]Talazoparib was successfully radiosynthesized with high radiochemical and chiral purity (>98%) and molar activity (28 GBq/μmol).
- In vivo studies demonstrated good tumor uptake of [18F]talazoparib in PC-3 xenografts, persisting for over 8 hours.
Conclusions:
- [18F]Talazoparib is a promising radiotracer for imaging PARP-1 expression.
- The bromo- and iodo-derivatives of talazoparib show potential for targeted radiotherapy applications using therapeutic radionuclides.

