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Synthesis and Evaluation of Folate-Conjugated Phenanthraquinones for Tumor-Targeted Oxidative Chemotherapy

机译:叶酸偶联的蒽醌类化合物在肿瘤靶向氧化化疗中的合成及评价

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摘要

Almost all cells are easily killed by exposure to potent oxidants. Indeed, major pathogen defense mechanisms in both animal and plant kingdoms involve production of an oxidative burst, where host defense cells show an invading pathogen with reactive oxygen species (ROS). Although cancer cells can be similarly killed by ROS, development of oxidant-producing chemotherapies has been limited by their inherent nonspecificity and potential toxicity to healthy cells. In this paper, we describe the targeting of an ROS-generating molecule selectively to tumor cells using folate as the tumor-targeting ligand. For this purpose, we exploit the ability of 9,10-phenanthraquinone (PHQ) to enhance the continuous generation of H2O2 in the presence of ascorbic acid to establish a constitutive source of ROS within the tumor mass. We report here that incubation of folate receptor-expressing KB cells in culture with folate-PHQ plus ascorbate results in the death of the cancer cells with an IC50 of ~10 nM (folate-PHQ). We also demonstrate that a cleavable spacer linking folate to PHQ is significantly inferior to a noncleavable spacer, in contrast to most other folate-targeted therapeutic agents. Unfortunately, no evidence for folate-PHQ mediated tumor regression in murine tumor models is obtained, suggesting that unanticipated impediments to generation of cytotoxic quantities of ROS in vivo are encountered. Possible mechanisms and potential solutions to these unanticipated results are offered.
机译:几乎所有的细胞都容易通过暴露于强氧化剂而被杀死。确实,动植物界中的主要病原体防御机制都涉及氧化爆发的产生,其中宿主防御细胞显示出具有活性氧(ROS)的入侵病原体。尽管癌细胞可以类似地被ROS杀死,但是产生氧化剂的化学疗法的发展受到它们固有的非特异性和对健康细胞的潜在毒性的限制。在本文中,我们描述了使用叶酸作为肿瘤靶向配体选择性地将ROS产生分子靶向肿瘤细胞。为此目的,我们利用9,10-菲醌(PHQ)在抗坏血酸存在下增强H2O2连续生成的能力,以在肿瘤块内建立ROS的构成性来源。我们在这里报告说,与叶酸-PHQ加抗坏血酸一起培养表达叶酸受体的KB细胞会导致癌细胞死亡,IC50约为10 nM(叶酸-PHQ)。我们还证明,与叶酸靶向的大多数其他治疗药物相比,将叶酸连接至PHQ的可裂解间隔区显着劣于不可裂解的间隔区。不幸的是,在鼠肿瘤模型中没有获得叶酸-PHQ介导的肿瘤消退的证据,这表明在体内无法产生细胞毒性数量的ROS。提供了这些意外结果的可能机制和潜在解决方案。

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