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α-FeO@Pt 异质结构粒子实现自供氧声动力学治疗及成像引导。

α-FeO@Pt heterostructure particles to enable sonodynamic therapy with self-supplied O and imaging-guidance.

机构信息

State Key Laboratory of Silicon Materials, School of Materials Science and Engineering, Zhejiang University, Hangzhou, 310027, Zhejiang, P. R. China.

Key Laboratory of Endoscopic Technique Research of Zhejiang Province, Sir Run Run Shaw Hospital, Zhejiang University, Hangzhou, 215123, P. R. China.

出版信息

J Nanobiotechnology. 2021 Nov 4;19(1):358. doi: 10.1186/s12951-021-01105-x.

Abstract

Sonodynamic therapy (SDT), presenting spatial and temporal control of ROS generation triggered by ultrasound field, has attracted considerable attention in tumor treatment. However, its therapeutic efficacy is severely hindered by the intrinsic hypoxia of solid tumor and the lack of smart design in material band structure. Here in study, fine α-FeO nanoparticles armored with Pt nanocrystals (α-FeO@Pt) was investigated as an alternative SDT agent with ingenious bandgap and structural design. The Schottky barrier, due to its unique heterostructure, suppresses the recombination of sono-induced electrons and holes, enabling superior ROS generation. More importantly, the composite nanoparticles may effectively trigger a reoxygenation phenomenon to supply sufficient content of oxygen, favoring the ROS induction under the hypoxic condition and its extra role played for ultrasound imaging. In consequence, α-FeO@Pt appears to enable effective tumor inhibition with imaging guidance, both in vitro and in vivo. This study has therefore demonstrated a highly potential platform for ultrasound-driven tumor theranostic, which may spark a series of further explorations in therapeutic systems with more rational material design.

摘要

声动力学疗法(SDT)通过超声场触发 ROS 的时空控制,在肿瘤治疗中引起了相当大的关注。然而,其治疗效果受到实体瘤固有缺氧和材料能带结构缺乏智能设计的严重阻碍。在本研究中,精细的α-FeO 纳米颗粒被 Pt 纳米晶体(α-FeO@Pt)包覆,作为一种具有巧妙能带和结构设计的替代 SDT 试剂进行了研究。肖特基势垒由于其独特的异质结构,抑制了超声诱导电子和空穴的复合,从而能够更好地生成 ROS。更重要的是,复合纳米颗粒可以有效地触发再氧合现象,以提供足够的氧气含量,有利于在缺氧条件下诱导 ROS,并为超声成像提供额外的作用。因此,α-FeO@Pt 似乎能够在体外和体内进行成像指导下实现有效的肿瘤抑制。本研究因此展示了一个用于超声驱动肿瘤治疗诊断的高潜力平台,这可能会激发在具有更合理材料设计的治疗系统中的一系列进一步探索。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4eee/8569996/0eb58c5e264e/12951_2021_1105_Fig1_HTML.jpg

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