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利用基于聚合物的微泡实现肿瘤的影像引导、靶向和触发式药物递送。

Image-guided, targeted and triggered drug delivery to tumors using polymer-based microbubbles.

机构信息

Department of Experimental Molecular Imaging, University Clinic and Helmholtz Center for Biomedical Engineering, RWTH-Aachen University, Aachen, Germany.

出版信息

J Control Release. 2012 Oct 10;163(1):75-81. doi: 10.1016/j.jconrel.2012.05.007. Epub 2012 May 9.

Abstract

Microbubbles (MB) are routinely used contrast agents for functional and molecular ultrasound (US) imaging. In addition, they have been attracting more and more attention for drug delivery purposes, enabling e.g. US-mediated drug delivery across biological barriers and US-induced triggered drug release from the MB shell. The vast majority of efforts in this regard have thus far focused on phospholipid-based soft-shell MB, which are suboptimal for stably incorporating large amounts of drug molecules because of their relatively thin shell. Using poly(butyl cyanoacrylate) (PBCA)-based hard-shell MB, we show here that both hydrophilic (Rhodamine-B) and hydrophobic (Coumarin-6) model drugs can be efficiently and stably entrapped within the ~50 nm shell of PBCA MB. In addition, we demonstrate that model drug loading does not negatively affect the acoustic properties of the MB, and that functionalizing the surface of fluorophore-loaded MB with anti-VEGFR2 antibodies enables image-guided and targeted model drug delivery to tumor blood vessels. Finally, we show both in vitro and in vivo that disintegrating VEGFR2-targeted MB with high-mechanical index US pulses leads to high levels of model drug release. Consequently, these findings indicate that polymer-based MB are highly suitable systems for image-guided, targeted and triggered drug delivery to tumors and tumor blood vessels.

摘要

微泡 (MB) 是常规使用的功能和分子超声 (US) 成像对比剂。此外,它们在药物输送方面也越来越受到关注,例如能够实现 US 介导的跨生物屏障药物输送和 US 诱导的从 MB 壳中触发药物释放。到目前为止,这方面的绝大多数努力都集中在基于磷脂的软壳 MB 上,由于其相对较薄的外壳,它们不太适合稳定地掺入大量药物分子。在这里,我们使用基于聚(正丁基氰基丙烯酸酯) (PBCA) 的硬壳 MB 表明,亲水性 (Rhodamine-B) 和疏水性 (香豆素-6) 模型药物都可以有效地和稳定地包裹在 PBCA MB 的~50nm 壳内。此外,我们证明了模型药物负载不会对 MB 的声学性质产生负面影响,并且用抗 VEGFR2 抗体对荧光团负载的 MB 进行表面功能化,可实现针对肿瘤血管的成像引导和靶向模型药物输送。最后,我们在体外和体内均表明,用高机械指数 US 脉冲破坏靶向 VEGFR2 的 MB 会导致模型药物的大量释放。因此,这些发现表明,基于聚合物的 MB 是用于对肿瘤和肿瘤血管进行成像引导、靶向和触发药物输送的高度合适的系统。

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