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Automated Preparation of [68Ga]Ga-3BP-3940 on a Synthesis Module for PET Imaging of the Tumor Microenvironment
Published on: April 25, 2025
Synthesis and Preliminary Evaluation of the 211At-Labeled PARP Inhibitor [211At]Talazoparib as a Targeted
Yongxiang Zheng1, Deyu Kong1, Truc T Huynh1
1Department of Radiology, Duke University Medical Center, Durham, North Carolina 27710, United States.
Abstract:
Poly(ADP-ribose) polymerase-1 (PARP1) has become a crucial target in cancer therapy. In recent years, derivatives of olaparib and rucaparib have been radiolabeled for noninvasive imaging of PARP1 expression and targeted radionuclide therapy of PARP-expressing tumors. Motivated by the superior potency of talazoparib, we developed a novel radiolabeling approach for [211At]talazoparib and report its in vitro and in vivo evaluation. The tin precursors and iodo standards were synthesized, separated on a chiral column, and [211At]talazoparib and its inactive. [211At]LT-674 enantiomer were synthesized in a single step from their respective tin precursor. Radiochemical yield (RCY) and radiochemical purity RCP were determined using RP-HPLC. Cell uptake and internalization were performed on PSMA-positive PC-3 PIP prostate carcinoma cells and U87MG glioma cells and in vitro cytotoxicity (MTT) was evaluated on PC-3 PIP cells. Biodistribution studies were performed in athymic mice with subcutaneous PC-3 PIP xenografts and the therapeutic efficacy of [211At]talazoparib was evaluated in the same animal model. The syntheses of tin precursors and iodo standards was developed and optimized. A one-step and scalable radiolabeling method was developed for the synthesis of [211At]talazoparib with 70 ± 7% (n = 10) RCY in 1 h and >95% RCP. The maximum activity of [211At]talazoparib produced was 370 MBq. High cell uptake and internalization were observed for [211At]talazoparib but not [211At]LT-674 with PC-3 PIP cells, and [211At]talazoparib was cytotoxic to PC3 PIP cells in vitro. High tumor uptake and prolonged retention, and rapid clearance from normal tissues were seen for [211At]talazoparib after intratumoral injection. Tumor growth inhibition and survival benefit were observed with a single dose of intratumorally injected [211At]talazoparib. Methods for the chiral separation of precursor permitted radiolabeling of [211At]talazoparib without the need for separation from its inactive 211At-labeled enantiomer after radiolabeling, and scaled-up production was optimized. [211At]talazoparib exhibited promising potential as a targeted radiotherapeutic, particularly for settings where locoregional administration is warranted.
Insights
Researchers developed a novel radiolabeling method for [211At]talazoparib, a potent PARP1 inhibitor, for targeted cancer therapy. This new approach shows promise for effective locoregional radionuclide therapy in PARP-expressing tumors.
Area of Science:
- Oncology
- Nuclear Medicine
- Radiochemistry
Background:
- Poly(ADP-ribose) polymerase-1 (PARP1) is a key target in cancer therapy.
- Radiolabeled PARP1 inhibitors like olaparib and rucaparib are used for imaging and therapy.
- Talazoparib's superior potency motivated the development of its radiolabeled form.
Purpose of the Study:
- To develop a novel radiolabeling approach for [211At]talazoparib.
- To evaluate the in vitro and in vivo performance of [211At]talazoparib.
- To assess its potential as a targeted radiotherapeutic agent.
Main Methods:
- Synthesis of tin precursors and iodo standards.
- One-step radiolabeling of [211At]talazoparib from tin precursors.
- Radiochemical yield (RCY) and purity (RCP) determination using RP-HPLC.
- In vitro cell uptake, internalization, and cytotoxicity assays.
- In vivo biodistribution and therapeutic efficacy studies in tumor-bearing mice.
Main Results:
- A scalable, one-step radiolabeling method yielded [211At]talazoparib with 70% RCY and >95% RCP in 1 hour.
- High cell uptake and internalization were observed in PC-3 PIP cells.
- [211At]talazoparib demonstrated in vitro cytotoxicity.
- In vivo studies showed high tumor uptake, prolonged retention, and rapid clearance from normal tissues.
- Intratumoral injection of [211At]talazoparib resulted in tumor growth inhibition and survival benefit.
Conclusions:
- A novel and scalable method for [211At]talazoparib synthesis was successfully developed.
- [211At]talazoparib exhibits potent anti-tumor activity and favorable biodistribution.
- The compound shows significant promise as a targeted radiotherapeutic, especially for locoregional administration.
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