利用细胞传递的共轭聚合物纳米粒子改善三维胶质母细胞瘤模型的光动力治疗

L. E. Ibarra, L. Beaugé, C. Chesta, V. Rivarola, R. Palacios
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引用次数: 3

摘要

近年来,光动力疗法(PDT)作为中枢神经系统(CNS)癌症疾病的替代疗法受到关注,因为它成功地消除了患者的胶质瘤。脑肿瘤,特别是胶质母细胞瘤(GBM)的PDT治疗已经在一些国家获得批准。由于其良好的光吸收和光稳定性,共轭聚合物纳米颗粒(CPNs)是一种很有前途的光敏剂,可用于PDT。最近,我们开发了金属卟啉掺杂的CPNs用于PDT,并证明它们通过ros介导的光诱导损伤有效地消除胶质瘤细胞。许多用于根除脑胶质瘤的治疗方法的一个问题是,由于血脑屏障(BBB)的选择性渗透性,在全身给药时,活性药物难以到达肿瘤并优先积累。为了解决这个问题,我们的方法使用了单个核细胞,它可以穿过血脑屏障并浸润肿瘤,作为药物传递到脑肿瘤的隐形载体。在这项研究中,cpn加载到单核细胞/巨噬细胞中,并测试了这些加载的单核细胞/巨噬细胞对GBM球体(3D肿瘤模型)的细胞功能、趋化性和渗透。使用人THP-1单核细胞和小鼠骨髓源性单核细胞(BMdM)成功加载CPNs,而不干扰细胞活力和向巨噬细胞状态分化的潜力。与CPNs相比,装载CPNs的单核细胞更容易浸润椭球体。此外,当使用我们的单核细胞介导的递送策略时,PDT对GBM球体的疗效得到了改善
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Exploiting cellular delivery of conjugated polymer nanoparticles for improved photodynamic therapy in a 3D glioblastoma model
Photodynamic Therapy (PDT) has recently gain attention as alternative treatment of Central Nervous System (CNS) cancer diseases, due to the demonstration of successfully elimination of gliomas in patients. The implementation of PDT for brain tumors, and especially glioblastoma (GBM), has already been approved in some countries. Due to their superb light absorption and photostability conjugated polymer nanoparticles (CPNs) are promising photosensitizers (PS) for use in PDT. Recently, we developed metallated porphyrin-doped CPNs for PDT and demonstrated that they were effective eliminating glioma cells trough ROS-mediated photoinduced damage. A problem of many therapies used to eradicate brain gliomas is the difficulty of arrival and preferential accumulation of the active drug into the tumor upon systemic administration due to the selective permeability of the blood-brain barrier (BBB). To solve this problem our approach employs mononuclear cells, which can cross BBB and infiltrate tumors, as stealth carriers for drug delivery into brain tumors. In this study loading of CPNs into monocytes/macrophages was demonstrated and the cellular functionality, chemotaxis and penetration of these loaded monocytes/macrophages into GBM spheroids (3D tumor models) was tested. CPNs loading was successfully achieved using human monocytes THP-1 and mouse bone marrow-derived monocytes (BMdM) without disturbing cell viability and differentiation potential towards macrophage state. CPNs-loaded monocytes were found to better infiltrate spheroids as compared to CPNs. Furthermore, PDT efficacy on GBM spheroids was improved when using our monocyte-mediated delivery strategy
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