Determining the Multivalent Effects of d-Peptide-Based Radiotracers.

IF 5.7 Chemical & Biomedical Imaging Pub Date : 2025-01-30 eCollection Date: 2025-03-24 DOI:10.1021/cbmi.4c00071
Siqi Zhang, Xiaona Sun, Wenhao Liu, Jiang Wu, Yuxuan Wu, Shuo Jiang, Xingkai Wang, Xin Gao, Quan Zuo, Hailong Zhang, Yingzi Zhang, Feng Wang, Rui Wang, Kuan Hu
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Abstract

Dextrorotary (d) peptides, composed of d-amino acids, are hyper-resistant to proteolytic hydrolysis, making them valuable ligands with excellent in vivo stability for radiopharmaceutical development. Multimerization is a well-established strategy for enhancing the in vivo performance of l-peptide-based radiopharmaceuticals. However, the effect of multimerization on the in vivo fate of d-peptide-based radiopharmaceuticals remains largely unexplored. Here, we synthesized the d-peptide DPA, which targets PD-L1, along with its dimer (DP2) and trimer (DP3). PET/CT imaging and ex vivo biodistribution studies were performed to delineate the pharmacokinetics and target interactions of [68Ga]DPA, [68Ga]DP2, and [68Ga]DP3 in both normal and tumor-bearing mice. Our results revealed that tumor uptake and kidney retention increased with higher valency ([68Ga]DP3 > [68Ga]DP2 > [68Ga]DPA). No significant differences were observed in the liver, heart, lung, spleen, intestine, or bone among the three radiotracers. Interestingly, a significant reduction of radioactivity in the bloodstream was detected for the [68Ga]DP3-treated group compared to the other two groups. Data analysis revealed that chiral configuration of amino acids and the linking chemistry used in multimerization are the two dominant factors in the in vivo fate of d-peptide multimers. These findings indicate that d-peptide multimerization exerts a distinct influence on in vivo profiles compared to l-peptide multimerization. This study deepens our understanding of how mirror-imaged peptides/proteins interact with the living systems, paving the way for the development of radiopharmaceuticals that harness d-peptides as targeting moieties.

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确定d-肽基放射性示踪剂的多价效应。
右旋肽(d)由d-氨基酸组成,对蛋白质水解具有高度抗性,使其成为放射性药物开发中具有良好体内稳定性的有价值的配体。多聚化是一种完善的策略,以提高l-肽为基础的放射性药物的体内性能。然而,多聚化对d肽基放射性药物体内命运的影响在很大程度上仍未被探索。在这里,我们合成了靶向PD-L1的d肽DPA及其二聚体(DP2)和三聚体(DP3)。通过PET/CT成像和体外生物分布研究来描述[68Ga]DPA、[68Ga]DP2和[68Ga]DP3在正常和荷瘤小鼠体内的药代动力学和靶相互作用。我们的研究结果显示,肿瘤摄取和肾脏保留随着[68Ga]DP3 > [68Ga]DP2 > [68Ga]DPA价的升高而增加。三种示踪剂对肝、心、肺、脾、肠、骨的影响均无显著差异。有趣的是,与其他两组相比,检测到[68Ga] dp3治疗组血液中的放射性显著降低。数据分析表明,氨基酸的手性构型和多聚过程中使用的连接化学是决定d肽多聚体在体内命运的两个主要因素。这些发现表明,与l-肽多聚相比,d-肽多聚对体内谱有明显的影响。这项研究加深了我们对镜像肽/蛋白质如何与生命系统相互作用的理解,为开发利用d-肽作为靶向部分的放射性药物铺平了道路。
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Chemical & Biomedical Imaging
Chemical & Biomedical Imaging 化学与生物成像-
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期刊介绍: Chemical & Biomedical Imaging is a peer-reviewed open access journal devoted to the publication of cutting-edge research papers on all aspects of chemical and biomedical imaging. This interdisciplinary field sits at the intersection of chemistry physics biology materials engineering and medicine. The journal aims to bring together researchers from across these disciplines to address cutting-edge challenges of fundamental research and applications.Topics of particular interest include but are not limited to:Imaging of processes and reactionsImaging of nanoscale microscale and mesoscale materialsImaging of biological interactions and interfacesSingle-molecule and cellular imagingWhole-organ and whole-body imagingMolecular imaging probes and contrast agentsBioluminescence chemiluminescence and electrochemiluminescence imagingNanophotonics and imagingChemical tools for new imaging modalitiesChemical and imaging techniques in diagnosis and therapyImaging-guided drug deliveryAI and machine learning assisted imaging
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