Aptamerized silica/gold nanocapsules for stimulated release of doxorubicin through remote two-photon excitation

IF 4.5 3区 材料科学 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY International Journal of Smart and Nano Materials Pub Date : 2022-01-02 DOI:10.1080/19475411.2022.2033874
L. Tew, Tsung-Hsi Lee, L. Lo, Y. Khung, Nai-Tzu Chen
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Abstract

ABSTRACT Precision-based drug delivery via remote triggering is fast becoming an attractive therapeutic design and is highly useful in complicated clinical situations that may require accurate site-delivery of drug while reducing the risk of collateral damage to surrounding healthy tissue. Of the many strategies available to achieve these desirable effects, silica/gold nano-assemblies offers a practical means to achieving these aims. Herein, as a proof-of-concept, a silica nanocapsule passivated with a gold outer nanoshell had been fabricated to deliver Doxorubicin, and this nano-assembly can be remotely triggered via two-photon excitation (TPE), even under in vivo setting. A polyethylene glycol (PEG) layer as well as AS1411 DNA aptamer had also been grafted to the surface to improve homing specificity toward MDA-MB-231 breast cancer tissue. The assembly of silica/gold nanocapsules was characterized via TEM, FTIR, and UV-Vis to validate the the nanoconstruct. Upon TPE irradiation, a higher expression level of Annexin V and Caspase-3 was observed in both in vitro and in vivo animal models. A significant reduction in tumor size on mice model was noticed after 21 days, and these results had suggested a viable nano-sized design serving as remotely triggered drug release platform based on current well-established silica nanoparticulate methodologies. Grahical abstract
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远端双光子激发诱导阿霉素释放的适配硅/金纳米胶囊
通过远程触发的精确给药正迅速成为一种有吸引力的治疗设计,在复杂的临床情况下非常有用,这些情况可能需要准确的部位给药,同时降低对周围健康组织附带损伤的风险。在实现这些理想效果的许多策略中,二氧化硅/金纳米组件提供了实现这些目标的实用手段。在此,作为概念验证,制备了一种用金外层纳米壳钝化的二氧化硅纳米胶囊来递送阿霉素,并且这种纳米组装可以通过双光子激发(TPE)远程触发,即使在体内设置下。聚乙二醇(PEG)层和AS1411 DNA适体也被移植到表面,以提高对MDA-MB-231乳腺癌组织的归巢特异性。通过TEM、FTIR和UV-Vis表征了纳米二氧化硅/金胶囊的组装过程,验证了纳米结构。TPE辐照后,体外和体内动物模型中Annexin V和Caspase-3的表达水平均较高。21天后,小鼠模型的肿瘤大小显著减小,这些结果表明,基于当前成熟的纳米二氧化硅方法,纳米级设计可以作为远程触发药物释放平台。Grahical文摘
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来源期刊
International Journal of Smart and Nano Materials
International Journal of Smart and Nano Materials MATERIALS SCIENCE, MULTIDISCIPLINARY-
CiteScore
6.30
自引率
5.10%
发文量
39
审稿时长
11 weeks
期刊介绍: The central aim of International Journal of Smart and Nano Materials is to publish original results, critical reviews, technical discussion, and book reviews related to this compelling research field: smart and nano materials, and their applications. The papers published in this journal will provide cutting edge information and instructive research guidance, encouraging more scientists to make their contribution to this dynamic research field.
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