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一种用于靶向、氧化还原响应超声成像以及成像引导高强度聚焦超声协同治疗的智能纳米诊疗剂。

An intelligent nanotheranostic agent for targeting, redox-responsive ultrasound imaging, and imaging-guided high-intensity focused ultrasound synergistic therapy.

机构信息

State Key Laboratory of High Performance Ceramic and Superfine Microstructures, Shanghai Institute of Ceramics, Chinese Academy of Science, Shanghai, 200050, P.R. China.

出版信息

Small. 2014 Apr 9;10(7):1403-11. doi: 10.1002/smll.201302846. Epub 2013 Nov 29.

Abstract

A novel multifunctional nanotheranostic agent with targeting, redox-responsive ultrasound imaging and ultrasound imaging-guided high-intensity focused ultrasound (HIFU) therapy (MSNC-PEG-HA(SS)-PFH, abbreviated as MPH(SS)-PFH) capabilities is developed. The redox-responsive guest molecule release and ultrasound imaging functions can be both integrated in such a "smart" theranostic agent, which is accomplished by the redox-triggered transition from the crosslinking state to retrocrosslinking state of the grafted polyethylene glycol-disulfide hyaluronic acid molecules on the particle surface when reaching a reducing environment in vitro. More importantly, under the tailored ultrasound imaging guiding, in vivo Hela tumor-bearing nude mice can be thoroughly and spatial-accurately ablated during HIFU therapy, due to the targeted accumulation, responsive ultrasound imaging guidance and the synergistic ablation functions of nanotheranostic agent MPH(SS)-PFH in the tumors. This novel multifunctional nano-platform can serve as a promising candidate for further studies on oncology therapy, due to its high stability, responsive and indicative ultrasound imaging of tumors, and enhanced HIFU therapeutic efficiency and spatial accuracy under ultrasound-guidance.

摘要

一种具有靶向、氧化还原响应超声成像及超声成像引导高强度聚焦超声(HIFU)治疗功能的新型多功能纳米诊疗剂(MSNC-PEG-HA(SS)-PFH,简称 MPH(SS)-PFH)被开发出来。这种“智能”诊疗剂能够将氧化还原响应的客体分子释放和超声成像功能集成在一起,这是通过在体外到达还原环境时,接枝在粒子表面上的聚乙二醇二硫键透明质酸分子从交联状态到反交联状态的氧化还原触发转变来实现的。更重要的是,在定制的超声成像引导下,由于纳米诊疗剂 MPH(SS)-PFH 在肿瘤中的靶向积累、响应性超声成像引导和协同消融作用,体内 Hela 荷瘤裸鼠在 HIFU 治疗过程中可以被彻底和空间精确地消融。由于其高稳定性、肿瘤的响应性和指示性超声成像以及在超声引导下增强的 HIFU 治疗效率和空间准确性,这种新型多功能纳米平台有望成为肿瘤治疗进一步研究的候选者。

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