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放射性示踪剂立体化学影响底物亲和力和动力学,可改善肿瘤中系统 x 的成像。

Radiotracer stereochemistry affects substrate affinity and kinetics for improved imaging of system x in tumors.

机构信息

School of Biomedical Engineering & Imaging Sciences, King's College London, London, UK.

Life Molecular Imaging GmbH, Berlin, Germany.

出版信息

Theranostics. 2022 Jan 24;12(4):1921-1936. doi: 10.7150/thno.63237. eCollection 2022.

Abstract

Amino acid utilization is perturbed in cancer cells, which rewire their metabolism to support cell survival and proliferation. This metabolic reprogramming can be exploited for diagnostic purposes through positron emission tomography imaging of fluorine-18 labeled amino acids. Despite its promise, little is known regarding transporter-recognition of non-natural amino acid stereoisomers or their utility for cancer imaging. We report here the synthesis and characterization of a radiolabeled amino acid ()-4-(3-F-fluoropropyl)-ʟ-glutamate ([F]FRPG) and compared its tumor imaging properties to the 4-isomer, [F]FSPG. [F]FRPG and [F]FSPG uptake was assessed in H460 lung cancer cells, with efflux measured 30 min after removal of exogenous activity. Specificity of [F]FRPG for system x was further examined following transporter inhibition and blocking studies with system x substrates. [F]FRPG and [F]FSPG pharmacokinetics was next quantified in mice bearing subcutaneous A549, H460, VCAP and PC3 tumors, with mice bearing A549 tumors imaged by PET/CT. To better-understand differential tumor retention, radiometabolite analysis was performed on tissue and blood samples after imaging. Next, [F]FRPG and [F]FSPG retention in lipopolysaccharide-treated lungs were compared to an orthotopic H460 lung cancer model. Finally, the sensitivity of [F]FRPG to manipulation of the redox environment was examined in cell and models. [F]FRPG was specifically transported across the plasma membrane by the cystine/glutamate antiporter system x and retained at high levels in multiple tumor models. Conversely, [F]FRPG was rapidly extracted from the blood and cleared from tissues with low system x expression. Due to its favorable imaging properties, tumor-to-blood ratios ≥10 were achieved with [F]FRPG, which were either equal to or greater than [F]FSPG. In addition, [F]FRPG retention in orthotopic lung tumors with high system x expression was 2.5-fold higher than inflamed tissue, allowing for clear tumor visualization. , [F]FRPG and [F]FSPG were metabolized to a single species, with [F]FRPG showing a higher percentage of parent radiotracer in tumors compared to [F]FSPG. [F]FRPG was sensitive to redox manipulations and tumor retention was reduced following treatment with liposomal doxorubicin in mice bearing ovarian tumors. Given the fast clearance and low background retention of [F]FRPG throughout the body, this radiotracer holds promise for the imaging of system x activity and treatment response monitoring in tumors of the thorax, abdomen, and head and neck. [F]FRPG PET imaging provides a sensitive noninvasive measure of system x and excellent properties for cancer imaging.

摘要

氨基酸利用在癌细胞中受到干扰,癌细胞会重新调整其代谢以支持细胞存活和增殖。这种代谢重编程可通过正电子发射断层扫描(PET)对氟-18 标记氨基酸进行成像来用于诊断目的。尽管有希望,但对于非天然氨基酸对映异构体的转运蛋白识别或其用于癌症成像的用途知之甚少。我们在此报告了放射性标记氨基酸()-4-(3-F-丙基)-L-谷氨酸([F]FRPG)的合成和表征,并将其与 4-异构体[F]FSPG 的肿瘤成像特性进行了比较。在 H460 肺癌细胞中评估了[F]FRPG 和[F]FSPG 的摄取,在去除外源性活性 30 分钟后测量了外排。在使用系统 x 底物进行转运蛋白抑制和阻断研究后,进一步研究了[F]FRPG 对系统 x 的特异性。接下来,在皮下 A549、H460、VCAP 和 PC3 肿瘤的荷瘤小鼠中定量了[F]FRPG 和[F]FSPG 的药代动力学,并对荷 A549 肿瘤的小鼠进行了 PET/CT 成像。为了更好地了解肿瘤保留的差异,在成像后对组织和血液样本进行了放射性代谢产物分析。接下来,比较了脂多糖处理的肺中[F]FRPG 和[F]FSPG 的保留情况与原位 H460 肺癌模型。最后,在细胞和模型中研究了[F]FRPG 对氧化还原环境变化的敏感性。[F]FRPG 被特异性地通过胱氨酸/谷氨酸反向转运蛋白系统 x 转运穿过质膜,并在多种肿瘤模型中保持高水平保留。相反,[F]FRPG 从血液中迅速提取并从低系统 x 表达的组织中清除。由于其有利的成像特性,[F]FRPG 实现了≥10 的肿瘤与血液比,这与[F]FSPG 相等或更高。此外,在具有高系统 x 表达的原位肺肿瘤中,[F]FRPG 的保留率是炎症组织的 2.5 倍,允许清晰地可视化肿瘤。[F]FRPG 和[F]FSPG 代谢为单一物质,与[F]FSPG 相比,[F]FRPG 在肿瘤中显示出更高比例的母体示踪剂。在荷卵巢瘤的小鼠中,用脂质体阿霉素处理后,[F]FRPG 的氧化还原状态发生变化,肿瘤保留减少。鉴于[F]FRPG 在全身的快速清除和低背景保留,该示踪剂有望用于成像胸、腹和头颈部肿瘤中的系统 x 活性和治疗反应监测。[F]FRPG PET 成像提供了系统 x 的敏感非侵入性测量,并且具有出色的癌症成像特性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/fbb2/8825600/93bf3f566c2d/thnov12p1921g001.jpg

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