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用于未来临床转化的[F]标记恶唑烷酮类抗生素的改进放射性合成

Improved Radiosynthesis of [F]-Labeled Oxazolidinone Antibiotics for Future Clinical Translation.

作者信息

Sarhan Mona, Shelke Anil M, Mane Kishor, Jadhav Ravindra, Jeon Byeonghoon, Nino-Meza Oscar, Chen Xueyi, Freundlich Joel S, Jain Sanjay K, Carroll Laurence

机构信息

Center for Infection and Inflammation Imaging Research, Center for Tuberculosis Research, and Department of Pediatrics, Johns Hopkins University School of Medicine, Baltimore, Maryland 21287, United States.

Department of Pharmacology, Physiology, and Neuroscience, Rutgers University-New Jersey Medical School, Newark, New Jersey 07103, United States.

出版信息

ACS Infect Dis. 2025 Jul 11;11(7):2009-2017. doi: 10.1021/acsinfecdis.5c00292. Epub 2025 Jun 12.

Abstract

The development of radiolabeled antibiotics for positron emission tomography/computed tomography (PET/CT) imaging has the potential to substantially improve our ability to measure compartment-specific antibiotic exposures for various infections. This study focuses on the radiosynthesis and optimization of fluorine-18 [F]-labeled oxazolidinone antibiotics, specifically [F]linezolid and [F]sutezolid, followed by imaging of the latter. Copper-mediated radiofluorination of boronated precursors was enhanced by variation of the phase-transfer catalysts and base conditions to improve the reaction efficiency. Preclinical evaluation of [F]sutezolid in uninfected and -infected mice demonstrated favorable biodistribution and metabolic stability, with minimal defluorination. Dynamic PET imaging confirmed rapid clearance, predominant renal and hepatobiliary excretion, and consistent tissue uptake across infected and uninfected models. These findings support the feasibility of [F]-labeled oxazolidinones as PET tracers for compartment-specific antibiotic exposures, paving the way for optimizing antibiotic dosing and future personalized treatments in patients.

摘要

用于正电子发射断层扫描/计算机断层扫描(PET/CT)成像的放射性标记抗生素的开发,有可能显著提高我们测量各种感染中特定隔室抗生素暴露量的能力。本研究重点关注氟-18[F]标记的恶唑烷酮类抗生素,特别是[F]利奈唑胺和[F]舒他唑胺的放射性合成及优化,随后对后者进行成像。通过改变相转移催化剂和碱条件来增强硼化前体的铜介导放射性氟化反应,以提高反应效率。对[F]舒他唑胺在未感染和感染小鼠中的临床前评估显示,其具有良好的生物分布和代谢稳定性,脱氟作用极小。动态PET成像证实其清除迅速,主要经肾和肝胆排泄,且在感染和未感染模型中的组织摄取一致。这些发现支持了[F]标记的恶唑烷酮类作为PET示踪剂用于特定隔室抗生素暴露量测量的可行性,为优化抗生素给药及未来患者的个性化治疗铺平了道路。

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