Feng Jie, Yu Wenqian, Xu Zhen, Wang Fuan
Key Laboratory of Analytical Chemistry for Biology and Medicine (Ministry of Education) , College of Chemistry and Molecular Sciences , Wuhan University , Wuhan 430072 , P. R. China . Email:
College of Chemistry , Chemical Engineering and Materials Science , Collaborative Innovation Center of Functionalized Probes for Chemical Imaging in Universities of Shandong , Key Laboratory of Molecular and Nano Probes , Ministry of Education , Shandong Normal University , Jinan 250014 , P. R. China.
Chem Sci. 2020 Jan 10;11(6):1649-1656. doi: 10.1039/c9sc06337d. eCollection 2020 Feb 14.
The extreme complexity and heterogeneity of fatal tumors requires the development of combination phototherapy considering the limited therapeutic efficiency of conventional monomodal photodynamic therapy (PDT) or photothermal therapy (PTT). However, tumor-specific drug administration and the accompanying hypoxia-restrained PDT present the main obstacles for executing an efficient combination phototherapy. Developing a highly biocompatible, tumor-specific, near infrared absorbing, and oxygen (O)-evolving multifunctional nanoplatform is thus crucial for an effective PDT-based combination therapy. In this contribution, a multifunctional ZIF-8-gated polydopamine nanoparticle (PDA) carrier was synthesized for simultaneously delivering a photosensitizer and a catalase (CAT) into tumor cells, thus realizing a cooperatively enhanced combination photodynamic and photothermal therapy, as systematically demonstrated and . The ZIF-8 gatekeeper facilitates the simultaneous and effective delivery of these functional payloads, and the subsequent tumor acidic pH-stimulated drug release. This leads to a significant improvement of combination efficacy by ameliorating tumor hypoxic conditions since the CAT-mediated self-sufficient O generation could substantially promote an efficient PDT operation. In addition, this nanoplatform can effectively convert near infrared photoradiation into heat, resulting in thermally induced elimination of cancerous cells. As an intelligent multi-mode therapeutic nanosystem, this inorganic/organic hybrid nanosystem showed great potential for accurate cancer diagnosis and immediate therapy.
致命肿瘤的极端复杂性和异质性要求开发联合光疗,因为传统的单模态光动力疗法(PDT)或光热疗法(PTT)的治疗效率有限。然而,肿瘤特异性药物给药以及随之而来的缺氧限制的PDT是实施高效联合光疗的主要障碍。因此,开发一种具有高度生物相容性、肿瘤特异性、近红外吸收和氧气(O)释放功能的多功能纳米平台对于基于PDT的有效联合治疗至关重要。在本研究中,合成了一种多功能ZIF-8门控聚多巴胺纳米颗粒(PDA)载体,用于将光敏剂和过氧化氢酶(CAT)同时递送至肿瘤细胞,从而实现协同增强的联合光动力和光热疗法,如系统证明的那样。ZIF-8守门人有助于这些功能性负载的同时有效递送,以及随后肿瘤酸性pH刺激的药物释放。由于CAT介导的自给自足的O生成可以显著促进高效的PDT操作,这通过改善肿瘤缺氧条件导致联合疗效的显著提高。此外,这种纳米平台可以有效地将近红外光辐射转化为热量,从而导致热诱导癌细胞消除。作为一种智能多模式治疗纳米系统,这种无机/有机杂化纳米系统在精确癌症诊断和即时治疗方面显示出巨大潜力。