交联环糊精纳米颗粒作为药物递送载体:合成策略和降解研究

IF 4.3 3区 化学 Q2 CHEMISTRY, MULTIDISCIPLINARY
Lisa Wehl, Katharina Muggli, Karin Möller, Hanna Engelke and Thomas Bein*, 
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引用次数: 0

摘要

在这项工作中,我们报道了基于环糊精的纳米载体的合成和表征,有望成为新的生物源和可生物降解的药物递送剂。具体来说,β-环糊精通过羰基二咪唑(CDI)共价交联,并通过聚乙二醇化形成胶体稳定,形成称为CD-CO NPs的β-CD-CO-PEG纳米颗粒。通过扫描电镜观察,优化后的纳米颗粒粒径分布较窄,水动力粒径在200 ~ 300 nm左右,干粉粒径在100 ~ 160 nm左右。CD-CO纳米颗粒是很有前途的药物递送载体,因为它们提供了源自β-环糊精构建单元的固有孔隙系统,以及通过交联这些β-环糊精单元产生的额外颗粒内孔隙空间。我们展示了这些材料的生物降解性,并举例说明了它们的药物输送潜力,使用两种不同的模型货物。在试管中基于时间的荧光释放测量建立了荧光染料Hoechst在中性pH下稳定的货物保留,相反,在pH 5下有效的刺激响应释放伴随着快速的纳米颗粒降解。这种低pH下的货物释放行为进一步观察到小的药物分子,疏水的necrosulfonamide,当用红外光谱跟踪。最后,通过体外荧光显微镜观察共价标记的CD-CO纳米颗粒对HeLa细胞的细胞吸收,确定了这些新纳米颗粒的药物传递潜力,与游离的Hoechst染料相比,膜渗透性Hoechst染料的传递时间延迟。综上所述,我们的工作旨在帮助设计和理解基于环糊精的纳米载体作为一种有前途的药物递送平台。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Cross-Linked Cyclodextrin-Based Nanoparticles as Drug Delivery Vehicles: Synthesis Strategy and Degradation Studies

In this work, we report on the synthesis and characterization of cyclodextrin-based nanocarriers, intended as new biogenic and biodegradable drug-delivery agents. Specifically, β-cyclodextrins were covalently cross-linked by carbonyl linkages using carbonyldiimidazole (CDI) and were colloidally stabilized via PEGylation to form β-CD-CO-PEG nanoparticles termed CD-CO NPs. The optimized synthesis results in size-controlled nanoparticles with a narrow particle size distribution and a hydrodynamic diameter around 200-300 nm in water and 100-160 nm as dried powder as observed by scanning electron microscopy. CD-CO nanoparticles are promising drug delivery carriers as they offer an intrinsic pore system originating from the β-cyclodextrin building units and an additional intraparticle pore space created by cross-linking these β-cyclodextrin units. We demonstrate the biodegradability of these materials and show exemplarily their drug delivery potential using two different model cargos. Time-based fluorescence release measurements in cuvette established a stable cargoretention of the fluorescent dye Hoechst at neutral pH, and in contrast, an efficient stimuli-responsive release at pH 5, accompanied by a fast nanoparticle degradation. This cargo-release behavior at low pH is further observed with a small drug molecule, the hydrophobic necrosulfonamide, when followed with infrared spectroscopy. Finally, the drug-delivery potential of these new nanoparticles was established by following the cell uptake of covalently labeled CD-CO nanoparticles into HeLa cells with in vitro fluorescence microscopy, whereby the membrane-permeable Hoechst dye was delivered time-delayed in comparison to free Hoechst dye. In summary, our work aims to contribute to the design and understanding of cyclodextrin-based nanocarriers as a promising drug delivery platform.

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来源期刊
ACS Omega
ACS Omega Chemical Engineering-General Chemical Engineering
CiteScore
6.60
自引率
4.90%
发文量
3945
审稿时长
2.4 months
期刊介绍: ACS Omega is an open-access global publication for scientific articles that describe new findings in chemistry and interfacing areas of science, without any perceived evaluation of immediate impact.
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