开发适用于锗-68/镓-68 发生器多组分的多功能[68Ga]Ga-FAPI-46 自动合成技术

Louis-Paul Paty, Simon Degueldre, Claire Provost, Camille Schmitt, Laura Trump, Julien Fouque, C. Vriamont, Frank Valla, Thibault Gendron, Olivier Madar
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摘要

最近,有人提出将镓-68 标记的 FAPI-46 作为一种新型正电子发射断层成像探针,用于诊断和监测多种癌症。目前正在进行的几项临床试验结果令人鼓舞,因此对这种放射性示踪剂的需求急剧增加。典型的[68Ga]Ga-FAPI-46标记方案无法应对多个发生器洗脱,导致放射药厂无法扩大生产规模并满足需求。在这里,我们提出了一种在 Trasis miniAllinOne 合成器上进行[68Ga]Ga-FAPI-46 的稳健而高效的自动放射合成方法,其特点是预纯化步骤允许多种发生器洗脱,并确保与各种镓-68 发生器兼容。我们的方法是通过首先测试五种不同的阳离子滤芯化学成分来优化预纯化步骤。只有测试过的强阳离子交换(SCX)滤芯具有足够的亲和力,定量捕集率大于 99.9%,而弱阳离子滤芯的定量捕集率不超过 50%。所选 SCX 滤芯的包装、漂洗或流动效果并不明显,但流体技术的改进节省了时间。根据我们之前开发[68Ga]Ga-FAPI-46 的经验,我们还在 10 分钟内的不同温度下进行了放射性标记优化。在温度高于 100°C 时,放射性化学收率(RCY)大于 80%,而化学杂质(88%)却没有明显增加。在 RCY、放射化学收率和化学纯度方面,与没有预纯化步骤的放射合成进行的比较也得出了结论。最后,利用三种发生器的洗脱物进行的高活性试验也成功地获得了这些参数。[68Ga]Ga-FAPI-46一直保持良好的放射化学收率(>89%,n = 3),最终产品质量符合基于欧洲药典的内部规范。该工艺适用于 GMP 生产,可扩大常规生产规模,提高产量,最终为患者提供更好的治疗。
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Development of a versatile [68Ga]Ga-FAPI-46 automated synthesis suitable to multi-elutions of germanium-68/gallium-68 generators
Gallium-68-labeled FAPI-46 has recently been proposed as a novel positron emission tomography imaging probe to diagnose and monitor a wide variety of cancers. Promising results from several ongoing clinical trials have led to a soaring demand for this radiotracer. Typical [68Ga]Ga-FAPI-46 labeling protocols do not cope with multiple generator elutions, leaving radiopharmacies unable to scale-up the production and meet the demand. Here, we propose a robust and efficient automated radiosynthesis of [68Ga]Ga-FAPI-46 on the Trasis miniAllinOne synthesizer, featuring a prepurification step which allows multiple generator elutions and ensures compatibility with a wide range of gallium-68 generators. Our approach was to optimize the prepurification step by first testing five different cationic cartridge chemistries. Only the strong cationic exchange (SCX) cartridges tested had sufficient affinities for quantitative trapping of >99.9%, while the weak cationics did not exceed 50%. Packaging, rinsing, or flowing of the selected SCX cartridges was not noticeable, but improvements in fluidics managed to save time. Based on our previous development experience of [68Ga]Ga-FAPI-46, radiolabeling optimization was also carried out at different temperatures during 10 min. At temperatures above 100°C, radiochemical yield (RCY) > 80% was achieved without significantly increasing the chemical impurities (<5.5 μg mL-1). The optimized sequence was reproducibly conducted with three different brands of widely used generators (RCY >88%). A comparison with radiosyntheses carried out without prepurification steps was also conclusive in terms of RCY, radiochemical yield, and chemical purity. Finally, high-activity tests using elutions from three generators were also successful for these parameters. [68Ga]Ga-FAPI-46 was consistently obtained in good radiochemical yields (>89%, n = 3), and the final product quality was compliant with internal specifications based on European Pharmacopoeia. This process is suitable for GMP production and allows scaling-up of routine productions, higher throughput, and, ultimately, better patient care.
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