Increased imaging ligand hydrophilicity and improved pharmacokinetic properties provides enhanced in vivo targeting of fibroblast activation protein

Radhika Narain, Ian Nessler, Paul L. Richardson, Jamie E. Erickson, Yuzhen Wang, Jacqueline Ferri, Heather L. Knight, Shaughn H. Bryant, Lucy A. Phillips, Liang Zhang, Soumya Mitra
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Abstract

In this work, the impact of physicochemical modifications on pharmacokinetics and in vivo targeting of a small molecule fibroblast activation protein inhibitor (FAPI) imaging ligand in a murine model of rheumatoid arthritis was evaluated. While similar ligands have been well-reported in oncology for molecular imaging and radiotherapy, there are limited reports of FAPI derivatives in targeted applications in immunology. As inflammation may increase both specific and non-specific delivery of targeted agents in general, we sought to identify the optimal targeted molecular imaging probe characteristics for efficient cell surface engagement. A series of FAPI derivatives were synthesized and their physicochemical properties modified via conjugation of fluorescent dyes and/or an albumin-binding small molecule. The impact of these modifications on cell surface binding affinity was assessed using an overexpressing cell line. Additionally, a thorough mechanistic characterization of fibroblast activation protein (FAP) cell surface internalization was evaluated in both overexpressing and endogenously expressing cells. Lastly, the pharmacokinetics and in vivo uptake in inflamed arthritic paws were characterized via near-infrared (NIR) imaging. All targeted molecular imaging agents tested maintained strong nanomolar binding affinity to cell surface FAP independent of chemical modification. The murine fibroblast-like synoviocytes expressed lower absolute cell-surface FAP compared to a transfected line, and the net internalization half-life measured for the transfected cells via flow cytometry was 7.2 h. The unmodified FAPI ligand exhibited the poorest in vivo targeting, likely resulting from its large apparent volume of distribution (62.7 ml) and rapid systemic clearance (t1/2 = 0.5 h). Conjugation of a charged, hydrophilic AF647 fluorophore decreased systemic clearance (t1/2 = 2.1 h) and demonstrated a 2-fold improvement in blocking FAPI-800CW engagement of FAP in vivo when compared to blocking of FAPI-800CW with FAPI with up to 2.8-fold improvements noted for the equivalent albumin binding construct comparison.

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成像配体亲水性增强,药代动力学特性改善,从而提高了成纤维细胞活化蛋白的体内靶向性
在这项研究中,我们评估了理化修饰对小分子成纤维细胞活化蛋白抑制剂(FAPI)成像配体在类风湿性关节炎小鼠模型中的药代动力学和体内靶向性的影响。虽然类似的配体在肿瘤学分子成像和放射治疗方面已有大量报道,但 FAPI 衍生物在免疫学靶向应用方面的报道却很有限。一般来说,炎症可能会增加靶向药物的特异性和非特异性递送,因此我们试图找出最佳的靶向分子成像探针特性,以实现有效的细胞表面接合。我们合成了一系列 FAPI 衍生物,并通过共轭荧光染料和/或白蛋白结合小分子改变了它们的理化性质。利用过表达细胞系评估了这些修饰对细胞表面结合亲和力的影响。此外,还在过表达细胞和内源表达细胞中评估了成纤维细胞活化蛋白(FAP)细胞表面内化的全面机理特征。最后,通过近红外(NIR)成像技术对药物动力学和发炎关节炎爪子的体内吸收进行了表征。所有测试的靶向分子成像剂都能与细胞表面的 FAP 保持强大的纳摩尔结合亲和力,与化学修饰无关。未修饰的 FAPI 配体在体内的靶向性最差,这可能是由于它的表观分布容积大(62.7 毫升)和系统清除快(t1/2 = 0.5 小时)。共轭带电亲水性 AF647 荧光团降低了系统清除率(t1/2 = 2.1 小时),与用 FAPI 阻断 FAPI-800CW 相比,在体内阻断 FAPI-800CW 与 FAPI 的结合方面提高了 2 倍,在等效白蛋白结合构建物比较中提高了 2.8 倍。
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