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多面型超声造影剂的药物递送:壳层组成的影响。

Drug Delivery from a Multi-faceted Ultrasound Contrast Agent: Influence of Shell Composition.

机构信息

School of Biomedical Engineering, Science, and Health Systems, Drexel University , 3141 Chestnut Street, Philadelphia, Pennsylvania 19104, United States.

出版信息

Mol Pharm. 2017 Oct 2;14(10):3448-3456. doi: 10.1021/acs.molpharmaceut.7b00451. Epub 2017 Aug 25.

Abstract

Many cancer therapy regimes still rely heavily on the systemic administration of toxic chemotherapeutic agents. Ultrasound contrast agents consisting of microbubbles (MBs) have emerged as a drug delivery vehicle to overcome the challenges associated with systemic chemotherapy. Here, we describe the development of non-immunogenic, functionalized polylactic acid (PLA) MBs for use in targeted cancer therapy. Our previous studies have shown that the balance between acoustic behavior and improved immune avoidance was scalable and successful to different degrees with two different PEGylation methods and was best achieved using incorporation of PEG-PLA at 5 wt % and for a LipidPEG at 1 wt %. Capitalizing on this, we now attach a targeting ligand, tumor necrosis factor-related apoptosis-inducing ligand (TRAIL), which selectively induces tumor cell death upon binding to cancer cell-specific surface receptors, initiating a transmembrane apoptosis signal. Additionally, the functionalized MBs were designed to coencapsulate doxorubicin (Dox) that can be released from the polymer shell in response to ultrasound focused at the tumor site, shielding healthy tissues from toxicity while increasing the potency and efficiency of treatment to the tumor tissue. Ligation of TRAIL reduced the encapsulation efficiency for Dox compared to those of their non-ligated counterparts (p < 0.0001) by approximately 34% for 100% PLA, 23% for 5 wt % PEG-PLA, and 30% for the 1 wt % LipidPEG platform. All platforms exhibited a burst effect (<7%, p < 0.0001), and sustained release lasted for over 150 h. This work has resulted in a choice of effective ultrasound-triggered, non-immunogenic, targeted drug delivery agents for potential use in cancer therapy. These platforms have many advantages over the systemic administration of chemotherapeutic drugs and represent a promising treatment to better serve the population with solid cancerous tumors as a whole.

摘要

许多癌症治疗方案仍然严重依赖于全身给予有毒的化疗药物。由微泡(MBs)组成的超声造影剂已成为一种药物递送载体,以克服与全身化疗相关的挑战。在这里,我们描述了用于靶向癌症治疗的非免疫原性、功能化聚乳酸(PLA)MB 的开发。我们之前的研究表明,声行为和改善免疫逃避之间的平衡在不同程度上具有可扩展性,并且使用两种不同的聚乙二醇化方法取得了不同程度的成功,使用 5wt%的 PEG-PLA 和 1wt%的 LipidPEG 可获得最佳效果。利用这一点,我们现在将一种靶向配体,肿瘤坏死因子相关凋亡诱导配体(TRAIL),其在与癌细胞特异性表面受体结合时选择性诱导肿瘤细胞死亡,启动跨膜凋亡信号。此外,功能化 MB 被设计为共包封阿霉素(Dox),当聚焦于肿瘤部位的超声时,Dox 可以从聚合物壳中释放出来,从而使健康组织免受毒性影响,同时提高对肿瘤组织的疗效和效率。与未连接的对照物相比,TRAIL 的连接降低了 Dox 的包封效率(p < 0.0001),对于 100% PLA 约为 34%,5wt% PEG-PLA 为 23%,1wt% LipidPEG 平台为 30%。所有平台均表现出爆发效应(<7%,p < 0.0001),持续释放时间超过 150 小时。这项工作导致了选择有效的超声触发、非免疫原性、靶向药物递送剂,用于癌症治疗的潜在用途。与全身给予化疗药物相比,这些平台具有许多优势,代表了一种有前途的治疗方法,可以更好地为患有实体癌的人群提供服务。

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