Evaluation of [68Ga]Ga-DOTA-AeK as a Potential Imaging Tool for PET Imaging of Cell Wall Synthesis in Bacterial Infections.

IF 4.3 3区 医学 Q2 CHEMISTRY, MEDICINAL
Pharmaceuticals Pub Date : 2024-08-31 DOI:10.3390/ph17091150
Palesa C Koatale, Mick M Welling, Sipho Mdanda, Amanda Mdlophane, John Takyi-Williams, Chrisna Durandt, Iman van den Bout, Frederik Cleeren, Mike M Sathekge, Thomas Ebenhan
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引用次数: 0

Abstract

The ability of bacteria to recycle exogenous amino acid-based peptides and amino sugars for peptidoglycan biosynthesis was extensively investigated using optical imaging. In particular, fluorescent AeK-NBD was effectively utilized to study the peptidoglycan recycling pathway in Gram-negative bacteria. Based on these promising results, we were inspired to develop the radioactive AeK conjugate [68Ga]Ga-DOTA-AeK for the in vivo localization of bacterial infection using PET/CT. An easy-to-implement radiolabeling procedure for DOTA-AeK with [68Ga]GaCI3 followed by solid-phase purification was successfully established to obtain [68Ga]Ga-DOTA-AeK with a radiochemical purity of ≥95%. [68Ga]Ga-DOTA-AeK showed good stability over time with less protein binding under physiological conditions. The bacterial incorporation of [68Ga]Ga-DOTA-AeK and its fluorescent Aek-NBD analog were investigated in live and heat-killed Escherichia coli (E. coli) and Staphylococcus aureus (S. aureus). Unfortunately, no conclusive in vitro intracellular uptake of [68Ga]Ga-DOTA-AeK was observed for E. coli or S. aureus live and heat-killed bacterial strains (p > 0.05). In contrast, AeK-NBD showed significantly higher intracellular incorporation in live bacteria compared to the heat-killed control (p < 0.05). Preliminary biodistribution studies of [68Ga]Ga-DOTA-AeK in a dual-model of chronic infection and inflammation revealed limited localization at the infection site with non-specific accumulation in response to inflammatory markers. Finally, our study demonstrates proof that the intracellular incorporation of AeK is necessary for successful bacteria-specific imaging using PET/CT. Therefore, Ga-68 was not a suitable radioisotope for tracing the bacterial uptake of AeK tripeptide, as it required chelation with a bulky metal chelator such as DOTA, which may have limited its active membrane transportation. An alternative for optimization is to explore diverse chemical structures of AeK that would allow for radiolabeling with 18F or 11C.

评估[68Ga]Ga-DOTA-AeK作为细菌感染中细胞壁合成正电子发射计算机断层成像的潜在成像工具。
利用光学成像技术广泛研究了细菌循环利用外源氨基酸肽和氨基糖进行肽聚糖生物合成的能力。其中,荧光 AeK-NBD 被有效地用于研究革兰氏阴性细菌的肽聚糖循环途径。基于这些有前景的结果,我们受到启发,开发了放射性 AeK 共轭物 [68Ga]Ga-DOTA-AeK ,用于 PET/CT 对细菌感染进行体内定位。我们用[68Ga]GaCI3对DOTA-AeK进行了简单易行的放射性标记,然后成功地进行了固相纯化,得到了放射化学纯度≥95%的[68Ga]Ga-DOTA-AeK。[68Ga]Ga-DOTA-AeK在生理条件下表现出良好的长期稳定性,与蛋白质的结合较少。研究人员在活大肠杆菌(E. coli)和金黄色葡萄球菌(S. aureus)中研究了[68Ga]Ga-DOTA-AeK 及其荧光 Aek-NBD 类似物在细菌中的结合情况。遗憾的是,在大肠杆菌或金黄色葡萄球菌的活菌株和热杀死菌株中没有观察到[68Ga]Ga-DOTA-AeK 的体外细胞内吸收(p > 0.05)。相比之下,AeK-NBD 在活细菌中的胞内掺入率明显高于热杀死的对照组(p < 0.05)。在慢性感染和炎症双重模型中对[68Ga]Ga-DOTA-AeK进行的初步生物分布研究显示,它在感染部位的定位有限,在炎症标记物的作用下会出现非特异性聚集。最后,我们的研究证明,AeK 的细胞内掺入是 PET/CT 成功进行细菌特异性成像的必要条件。因此,Ga-68并不是追踪细菌吸收AeK三肽的合适放射性同位素,因为它需要与DOTA等笨重的金属螯合剂螯合,这可能会限制它的主动膜运输。优化的另一种方法是探索 AeK 的多种化学结构,以便用 18F 或 11C 进行放射性标记。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Pharmaceuticals
Pharmaceuticals Pharmacology, Toxicology and Pharmaceutics-Pharmaceutical Science
CiteScore
6.10
自引率
4.30%
发文量
1332
审稿时长
6 weeks
期刊介绍: Pharmaceuticals (ISSN 1424-8247) is an international scientific journal of medicinal chemistry and related drug sciences.
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