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用于增强光动力和缺氧激活治疗联合抗癌活性的肿瘤穿透纳米粒子。

Tumor-Penetrating Nanoparticles for Enhanced Anticancer Activity of Combined Photodynamic and Hypoxia-Activated Therapy.

机构信息

Key Laboratory of Natural Medicines, Department of Pharmaceutics, China Pharmaceutical University , Nanjing, Jiangsu 210009, China.

出版信息

ACS Nano. 2017 Feb 28;11(2):2227-2238. doi: 10.1021/acsnano.6b08731. Epub 2017 Feb 6.

Abstract

Poor tumor penetration is a major challenge for the use of nanoparticles in anticancer therapy. Moreover, the inability to reach hypoxic tumor cells that are distant from blood vessels results in inadequate exposure to antitumor therapeutics and contributes to development of chemoresistance and increased metastasis. In the present study, we developed iRGD-modified nanoparticles for simultaneous tumor delivery of a photosensitizer indocyanine green (ICG) and hypoxia-activated prodrug tirapazamine (TPZ). The iRGD-modified nanoparticles loaded with ICG and TPZ showed significantly improved penetration in both 3D tumor spheroids in vitro and orthotopic breast tumors in vivo. ICG-mediated photodynamic therapy upon irradiation with a near-IR laser induced hypoxia, which activated antitumor activity of the codelivered TPZ for synergistic cell-killing effect. In vivo studies demonstrated that the nanoparticles could efficiently deliver the drug combination in 4T1 orthotopic tumors. Primary tumor growth and metastasis were effectively inhibited by the iRGD-modified combination nanoparticles with minimal side effects. The results also showed the anticancer benefits of codelivering ICG and TPZ in a single nanoparticle formulation in contrast to a mixture of nanoparticles containing individual drugs. The study demonstrates the benefits of combining tumor-penetrating nanoparticles with hypoxia-activated drug treatment and establishes a delivery platform for PDT and hypoxia-activated chemotherapy.

摘要

肿瘤穿透性差是将纳米粒子应用于抗癌治疗的主要挑战。此外,无法到达远离血管的缺氧肿瘤细胞,导致抗肿瘤治疗药物的暴露不足,从而导致化疗耐药性增加和转移增加。在本研究中,我们开发了 iRGD 修饰的纳米粒子,用于同时递送至肿瘤部位的光敏剂吲哚菁绿(ICG)和缺氧激活前药替拉扎胺(TPZ)。负载 ICG 和 TPZ 的 iRGD 修饰的纳米粒子在体外 3D 肿瘤球体和体内原位乳腺癌肿瘤中均表现出显著改善的穿透性。近红外激光照射诱导 ICG 介导的光动力治疗产生缺氧,从而激活共递送的 TPZ 的抗肿瘤活性,产生协同的细胞杀伤作用。体内研究表明,该纳米粒子可有效地将药物组合递送至 4T1 原位肿瘤中。与包含单个药物的纳米粒子混合物相比,iRGD 修饰的组合纳米粒子可有效抑制原发性肿瘤生长和转移,且副作用最小。结果还表明,在单个纳米粒子制剂中同时递送 ICG 和 TPZ 具有抗癌益处。该研究结合了肿瘤穿透性纳米粒子与缺氧激活药物治疗,为 PDT 和缺氧激活化疗建立了一个递药平台。

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