Chongqing Institute of Green and Intelligent Technology, Chinese Academy of Sciences, Chongqing 400714, China; Faculty of Health Sciences, University of Macau, Taipa, Macau 999078, China.
Department of Neurosurgery and Key Laboratory of Neurotrauma, Southwest Hospital, The Third Military Medical University (Army Military Medical University), Chongqing 400038, China.
Acta Biomater. 2021 Sep 1;131:483-492. doi: 10.1016/j.actbio.2021.07.014. Epub 2021 Jul 13.
Photodynamic therapy (PDT), where a photosensitizer (under light irradiation) converts molecular oxygen to singlet oxygen to elicit programmed cell death, is a promising cancer treatment modality with a high temporal and spatial resolution. However, only limited cancer treatment efficacy has been achieved in clinical PDT due to the hypoxic conditions of solid tumor microenvironment that limits the generation of singlet oxygen, and PDT process often leads to even more hypoxic microenvironment due to the consumption of oxygens during therapy. Herein, we designed novel supramolecular micelles to co-deliver photosensitizer and hypoxia-responsive prodrug to improve the overall therapeutic efficacy. The supramolecular micelles (CPC) were derived from a polyethylene glycol (PEG) system dually tagged with hydrophilic cucurbit[7]uril (CB[7]) and hydrophobic Chlorin e6 (Ce6), respectively on each end, for synergistic antitumor therapy via PDT of Ce6 and chemotherapy of a hypoxia-responsive prodrug, banoxantrone (AQ4N), loaded into the cavity of CB[7]. In addition, CPC was further modularly functionalized by folate (FA) via strong host-guest interaction between folate-amantadine (FA-ADA) and CB[7] to produce a novel nanoplatform, AQ4N@CPC-FA, for targeted delivery. AQ4N@CPC-FA exhibited enhanced cellular uptake, negligible cytotoxicity and good biocompatibility, and improved intracellular reactive oxygen species (ROS) generation efficiency. More importantly, in vivo evaluation of AQ4N@CPC-FA revealed a synergistic antitumor efficacy between PDT of Ce6 and hypoxia-activated chemotherapy of AQ4N (that can be converted to chemotherapeutic AQ4 for tumor chemotherapy in response to the strengthened hypoxic tumor microenvironment during PDT treatment). This study not only provides a new nanoplatform for synergistic photodynamic-chemotherapeutic treatment, but also offers important new insights to design and development of multifunctional supramolecular drug delivery system. STATEMENT OF SIGNIFICANCE: Photodynamic therapy (PDT) has exhibited a variety of advantages for cancer phototherapy as compared to traditional chemotherapy. However, the unsatisfactory therapeutic efficacy by PDT alone as a result of the enhanced tumor hypoxia during PDT has limited its clinical application. Herein, we designed multifunctional supramolecular micelles to co-deliver photosensitizer and hypoxia-responsive prodrug to improve the overall therapeutic efficacy. The supramolecular micelles are biocompatible and possess strong red absorption, controlled drug release profile, and ultimately enhanced therapeutic outcome via PDT-chemotherapy. This study not only provides a new nanoplatform for synergistic photodynamic-chemotherapeutic treatment of cancer, but also offers important new insights to design and development of multifunctional supramolecular drug delivery tool for multi-modality cancer therapy.
光动力疗法(PDT)是一种有前途的癌症治疗方法,它利用光敏剂(在光照射下)将分子氧转化为单线态氧,从而引发程序性细胞死亡,具有很高的时空分辨率。然而,由于实体瘤微环境的缺氧条件限制了单线态氧的产生,以及 PDT 过程中由于治疗过程中氧气的消耗常常导致缺氧微环境更加严重,因此,临床 PDT 仅取得了有限的癌症治疗效果。在此,我们设计了新型超分子胶束来共同递送光敏剂和缺氧反应性前药,以提高整体治疗效果。超分子胶束(CPC)源自一端分别带有亲水性葫芦[7]脲(CB[7])和疏水性氯[e6](Ce6)的聚乙二醇(PEG)系统,用于通过 Ce6 的 PDT 和负载到 CB[7]腔中的缺氧反应性前药,即氨茴霉素(AQ4N)的化学疗法协同抗肿瘤治疗。此外,通过叶酸(FA)与葫芦[7]之间的强主体-客体相互作用,进一步将 CPC 模块化功能化,产生一种新型纳米平台,AQ4N@CPC-FA,用于靶向递药。AQ4N@CPC-FA 表现出增强的细胞摄取、可忽略的细胞毒性和良好的生物相容性,以及提高的细胞内活性氧(ROS)生成效率。更重要的是,AQ4N@CPC-FA 的体内评价表明,Ce6 的 PDT 和 AQ4N 的缺氧激活化疗之间具有协同抗肿瘤疗效(可以在 PDT 治疗期间由于增强的缺氧肿瘤微环境转化为用于肿瘤化疗的化疗 AQ4N)。这项研究不仅为协同光动力化学治疗提供了新的纳米平台,而且为多功能超分子药物输送系统的设计和开发提供了重要的新见解。意义声明:与传统化疗相比,光动力疗法(PDT)在癌症光疗方面表现出多种优势。然而,由于 PDT 期间肿瘤缺氧增强,单独使用 PDT 的治疗效果不理想,限制了其临床应用。在此,我们设计了多功能超分子胶束来共同递送光敏剂和缺氧反应性前药,以提高整体治疗效果。超分子胶束具有生物相容性和强红光吸收、控释药物释放特性,并通过 PDT-化疗最终增强治疗效果。这项研究不仅为癌症的协同光动力化学治疗提供了新的纳米平台,而且为多功能超分子药物输送工具的设计和开发提供了重要的新见解,用于多模式癌症治疗。