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可激活杂化纳米诊疗剂用于四模态成像和协同光热/光动力治疗。

Activatable Hybrid Nanotheranostics for Tetramodal Imaging and Synergistic Photothermal/Photodynamic Therapy.

机构信息

Department of Materials Science and Engineering, University of Wisconsin - Madison, WI, 53705, USA.

Department of Biomedical Engineering, University of Wisconsin - Madison, WI, 53705, USA.

出版信息

Adv Mater. 2018 Feb;30(6). doi: 10.1002/adma.201704367. Epub 2017 Dec 21.

Abstract

A multifunctional core-satellite nanoconstruct is designed by assembling copper sulfide (CuS) nanoparticles on the surface of [ Zr]-labeled hollow mesoporous silica nanoshells filled with porphyrin molecules, for effective cancer imaging and therapy. The hybrid nanotheranostic demonstrates three significant features: (1) simple and robust construction from biocompatible building blocks, demonstrating prolonged blood retention, enhanced tumor accumulation, and minimal long-term systemic toxicity, (2) rationally selected functional moieties that interact together to enable simultaneous tetramodal (positron emission tomography/fluorescence/Cerenkov luminescence/Cerenkov radiation energy transfer) imaging for rapid and accurate delineation of tumors and multimodal image-guided therapy in vivo, and (3) synergistic interaction between CuS-mediated photothermal therapy and porphyrin-mediated photodynamic therapy which results in complete tumor elimination within a day of treatment with no visible recurrence or side effects. Overall, this proof-of-concept study illustrates an efficient, generalized approach to design high-performance core-satellite nanohybrids that can be easily tailored to combine a wide variety of imaging and therapeutic modalities for improved and personalized cancer theranostics in the future.

摘要

一种多功能核-壳纳米结构是通过将硫化铜 (CuS) 纳米粒子组装在标记有 [Zr] 的中空介孔硅纳米壳表面上而设计的,该纳米壳中填充有卟啉分子,用于有效进行癌症成像和治疗。该杂交纳米诊疗剂具有三个显著特点:(1) 由生物相容性构建块构建而成,方法简单且稳健,表现出延长的血液保留、增强的肿瘤积累和最小的长期全身毒性;(2) 合理选择的功能部分相互作用,以实现同时进行四模态(正电子发射断层扫描/荧光/Cerenkov 发光/Cerenkov 辐射能量转移)成像,从而快速准确地描绘肿瘤,并在体内进行多模态图像引导治疗;(3) CuS 介导的光热疗法和卟啉介导的光动力疗法之间的协同相互作用,导致在治疗一天内完全消除肿瘤,没有可见的复发或副作用。总的来说,这项概念验证研究说明了一种高效、通用的方法来设计高性能的核-壳纳米杂种,这些杂种可以很容易地进行定制,以结合各种成像和治疗模式,以改善和个性化未来的癌症治疗。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0ee1/5805572/5dbcaad37633/nihms920778f1.jpg

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