Key Laboratory of Smart Drug Delivery, Ministry of Education & PLA, School of Pharmacy, Fudan University, Shanghai 201203, China.
Biomaterials. 2013 Feb;34(6):1739-46. doi: 10.1016/j.biomaterials.2012.11.016. Epub 2012 Dec 2.
Limited penetration of antineoplastic agents is one of the contributing factors for chemotherapy failure of many solid tumors. In order to enhance drug penetration into solid cancer, especially, into the avascular regions inside tumors, we proposed cyclic RGD peptide functionalized PEGylated poly(trimethylene carbonate) nanoparticles (c(RGDyK)-NP). By integrin-mediated transcytosis and enhanced drug permeation, c(RGDyK)-NP could access the neoplastic cells distant from blood vessels, and consequently, avoiding the capability of cancer regeneration from these tumor cells. In the present study, the solid tumor penetration, homing specificity and anticancer efficacy were evaluated both on the ex vivo 3D tumor spheroids and on the subcutaneous xenograft mice model. In comparison with conventional nanoparticles (NP/PTX) and Taxol, c(RGDyK)-NP/PTX showed the strongest penetration and accumulation into 3D tumor spheroids, a marked tumor-homing specificity in vivo and the greatest tumor growth inhibitory effect in vitro and in vivo. Histochemistry analysis revealed that no obvious histopathological abnormalities or lesions were observed in major organs after intravenous administration with the treatment doses. In conclusion, cyclic RGD peptide-conjugated PEG-PTMC nanoparticle could facilitate drug penetration and accumulation in tumor tissues and may be a promising vehicle for enhancing the chemotherapy of solid cancers.
抗肿瘤药物的有限渗透是许多实体瘤化疗失败的原因之一。为了增强药物渗透到实体瘤中,特别是肿瘤内部的无血管区域,我们提出了环肽 RGD 功能化聚(三亚甲基碳酸酯)纳米粒子(c(RGDyK)-NP)。通过整合素介导的转胞吞作用和增强的药物渗透作用,c(RGDyK)-NP 可以到达远离血管的肿瘤细胞,从而避免这些肿瘤细胞的癌症再生能力。在本研究中,我们在体外 3D 肿瘤球状体和皮下异种移植小鼠模型上评估了固体肿瘤的渗透、归巢特异性和抗癌疗效。与常规纳米粒子(NP/PTX)和紫杉醇相比,c(RGDyK)-NP/PTX 显示出对 3D 肿瘤球状体最强的渗透和积累作用,在体内具有明显的肿瘤归巢特异性,以及在体外和体内对肿瘤生长的最大抑制作用。组织化学分析显示,在静脉给予治疗剂量后,主要器官没有观察到明显的组织病理学异常或损伤。总之,环肽 RGD 修饰的聚乙二醇-三亚甲基碳酸酯纳米粒子可以促进药物在肿瘤组织中的渗透和积累,可能是增强实体瘤化疗的一种有前途的载体。