State Key Laboratory of Polymer Physics and Chemistry, Changchun Institute of Applied Chemistry , Chinese Academy of Sciences , Changchun , Jilin 130022 , P. R. China.
The University of Chinese Academy of Sciences , Beijing 100049 , P. R. China.
ACS Appl Mater Interfaces. 2018 Jul 25;10(29):24638-24647. doi: 10.1021/acsami.8b07570. Epub 2018 Jul 9.
The oxygen-dependent feature of most photosensitizers (PSs) and the aggravated hypoxia tumor microenvironment seriously impede the photodynamic therapy (PDT) effectiveness. However, this undesirable impediment can be utilized to further trigger the activation of hypoxia-sensitive prodrugs. Moreover, a combined therapy can be used by associating PDT with hypoxia-activated chemotherapy. Herein, a multifunctional Hf-porphyrin nanoscale metal-organic framework (NMOF) platform [Hf/tetra(4-carboxyphenyl)porphine (TCPP)] has been synthesized, with a high porphyrin loading capacity and a well-ordered coordination array preventing porphyrin self-quenching, thus greatly improving the generation efficiency of reactive oxygen species (ROS), which is helpful for PDT. As-synthesized Hf-TCPP nanoparticles possess more than 50 wt % of TCPP PS content, good crystallization, and a large Brunauer-Emmett-Teller surface for further loading the hypoxia-activated prodrug [tirapazamine (TPZ)] in a high-loading content. Additionally, subsequent surface modification with a dopamine-derived polymer (DOPA-PIMA-mPEG) significantly improves their dispersibility and structural stability, and the controlled release kinetics of TPZ. Such a nanoplatform can efficiently produce ROS for PDT upon irradiation, and also the depletion of the oxygen could further aggravate the hypoxic environment of tumors to induce the activation of TPZ for achieving an enhanced treatment efficacy. This work demonstrates the great advantages of an NMOF-based platform in antitumor therapies for combined PDT and hypoxia-activated chemotherapy.
大多数光敏剂(PSs)的氧依赖性特征和加剧的缺氧肿瘤微环境严重阻碍了光动力疗法(PDT)的效果。然而,这种不理想的障碍可以被利用来进一步触发缺氧敏感前药的激活。此外,还可以将 PDT 与缺氧激活化疗相结合进行联合治疗。在此,合成了一种多功能 Hf-卟啉纳米级金属有机骨架(NMOF)平台[Hf/四(4-羧基苯基)卟啉(TCPP)],具有高卟啉负载能力和有序的配位阵列,可防止卟啉自猝灭,从而大大提高了活性氧(ROS)的产生效率,有助于 PDT。合成的 Hf-TCPP 纳米颗粒具有超过 50wt%的 TCPP PS 含量、良好的结晶性和大的 Brunauer-Emmett-Teller 表面积,可进一步以高负载量负载缺氧激活前药[替拉扎胺(TPZ)]。此外,随后用多巴胺衍生聚合物(DOPA-PIMA-mPEG)进行表面修饰,显著提高了它们的分散性和结构稳定性,以及 TPZ 的控制释放动力学。这种纳米平台在辐照下可有效产生 ROS 用于 PDT,并且氧气的消耗还可以进一步加剧肿瘤的缺氧环境,以诱导 TPZ 的激活,从而实现增强的治疗效果。这项工作证明了基于 NMOF 的平台在联合 PDT 和缺氧激活化疗的抗肿瘤治疗中的巨大优势。