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锝标记的、聚乙二醇化的(N-组氨酸)乙酰基-β-赖氨酸-β-丙氨酸-β-丙氨酸-谷氨酰胺-色氨酸-丙氨酸-缬氨酸-甘氨酸-组氨酸-环己基丙氨酸-正亮氨酸-酰胺

Tc-Labeled, PEGylated (NHis)Ac-βhLys-βAla-βAla-Gln-Trp-Ala-Val-Gly-His-Cha-Nle-NH

作者信息

Shan Liang

机构信息

National Center for Biotechnology Information, NLM, NIH

Abstract

The Tc-labeled, PEGylated (NHis)Ac-βhLys-βAla-βAla-Gln-Trp-Ala-Val-Gly-His-Cha-Nle-NH (Lys-BN), abbreviated as Tc-PEG-Lys-BN (x = 5, 10, and 20 kDa), are PEGylated bombesin (BN) analogs that were synthesized by Dapp et al. for imaging of tumors that overexpress gastrin-releasing peptide receptors (GRPR) (1). Engineered proteins and peptides are widely applied in the development of molecular imaging agents; however, they exhibit some unfavorable pharmacokinetic properties when used , such as rapid clearance, immunogenicity, and poor stability (e.g., aggregation, degradation, deamination, oxidation, etc.) (2, 3). As a technique to overcome these limits of proteins and peptides, PEGylation has been extensively studied recently, and the number of agents newly developed with PEGylation is increasing continuously (3, 4). PEGylation is defined as the covalent attachment of poly(ethylene glycol) (PEG) chains to bioactive substances (3). PEG possesses three key properties: great flexibility due to the absence of bulky substituents along the chain; high hydration of the polymeric backbone; and a high degree of safety, with toxicity only at very high doses (1, 3, 4). Furthermore, PEG can be coupled with virtually any exposed surface and even some buried amino acids in a protein, and this coupling can be achieved at the N- or C-terminus, the cysteines located far from the receptor-binding site, or the incorporated unnatural amino acids. PEG increases the blood circulation of a given protein by increasing its hydrodynamic volume, prevents its immunogenicity, reduces its aggregation, and increases its thermal stability. However, a reduction in biological potency is common after PEGylation because of the steric entanglement of polymer chains during the protein/receptor recognition process (3). This reduction is also related to the PEGylation methods and PEG selected. The properties of PEG vary significantly with molecular weight and concentration. Radiolabeled BN analogs are promising radiotracers for tumor imaging and therapy by targeting GRPR (5-7). However, the low stability of BN analogs limits their clinical application (8, 9). Dapp et al. prepared a series of PEGylated BN(7-14) analogs and evaluated their properties and (1). PEGylation was performed with linear PEG molecules of various sizes (5 kDa (PEG), 10 kDa (PEG), and 20 kDa (PEG)) through the ɛ-amino group of a βhLys-βAla-βAla spacer between the BN sequence and the (NHis)Ac chelator. results showed that PEGylation did not affect the binding affinity of BN analogs, but it did slow their binding kinetics (1). results showed that PEGylation increased the stability of the analogs, improved their pharmacokinetics, and enhanced the tumor retention.

摘要

用锝标记的聚乙二醇化(NHis)Ac-βhLys-βAla-βAla-Gln-Trp-Ala-Val-Gly-His-Cha-Nle-NH(Lys-BN),简称为Tc-PEG-Lys-BN(x = 5、10和20 kDa),是由达普等人合成的聚乙二醇化蛙皮素(BN)类似物,用于对过表达胃泌素释放肽受体(GRPR)的肿瘤进行成像(1)。工程化蛋白质和肽在分子成像剂的开发中被广泛应用;然而,使用时它们表现出一些不利的药代动力学特性,如快速清除、免疫原性和稳定性差(如聚集、降解、脱氨、氧化等)(2,3)。作为一种克服蛋白质和肽这些局限性的技术,聚乙二醇化最近得到了广泛研究,新开发的聚乙二醇化试剂数量也在不断增加(3,4)。聚乙二醇化被定义为聚(乙二醇)(PEG)链与生物活性物质的共价连接(3)。PEG具有三个关键特性:由于链上没有庞大取代基而具有很大的灵活性;聚合物主链的高度水合性;以及高度安全性,仅在非常高的剂量下才有毒性(1,3,4)。此外,PEG几乎可以与蛋白质中任何暴露的表面甚至一些埋藏的氨基酸偶联,并且这种偶联可以在N端或C端、远离受体结合位点的半胱氨酸或掺入的非天然氨基酸处实现。PEG通过增加给定蛋白质的流体动力学体积来增加其血液循环,防止其免疫原性,减少其聚集,并增加其热稳定性。然而,由于蛋白质/受体识别过程中聚合物链的空间缠结,聚乙二醇化后生物活性通常会降低(3)。这种降低也与聚乙二醇化方法和所选的PEG有关。PEG的性质随分子量和浓度的变化而有很大差异。放射性标记的BN类似物是通过靶向GRPR进行肿瘤成像和治疗的有前景的放射性示踪剂(5 - 7)。然而,BN类似物的低稳定性限制了它们的临床应用(8,9)。达普等人制备了一系列聚乙二醇化的BN(7 - 14)类似物并评估了它们的性质(1)。通过BN序列与(NHis)Ac螯合剂之间βhLys-βAla-βAla间隔基的ε-氨基,用各种大小的线性PEG分子(5 kDa(PEG)、10 kDa(PEG)和20 kDa(PEG))进行聚乙二醇化。结果表明,聚乙二醇化不影响BN类似物的结合亲和力,但确实减缓了它们的结合动力学(1)。结果表明,聚乙二醇化增加了类似物的稳定性,改善了它们的药代动力学,并增强了肿瘤滞留。

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