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二维压电 BiMoO 纳米带用于 GSH 增强声动力学治疗。

2D Piezoelectric Bi MoO Nanoribbons for GSH-Enhanced Sonodynamic Therapy.

机构信息

Key Laboratory of Superlight Materials and Surface Technology, Ministry of Education, College of Material Sciences and Chemical Engineering, Harbin Engineering University, Harbin, 150001, P. R. China.

State Key Laboratory of Rare Earth Resource Utilization, Changchun Institute of Applied Chemistry, Chinese Academy of Sciences, Changchun, 130022, P. R. China.

出版信息

Adv Mater. 2021 Dec;33(51):e2106838. doi: 10.1002/adma.202106838. Epub 2021 Oct 16.

Abstract

Reducing the scavenging capacity of reactive oxygen species (ROS) and elevating ROS production are two primary goals of developing novel sonosensitizers for sonodynamic therapy (SDT). Hence, ultrathin 2D Bi MoO -poly(ethylene glycol) nanoribbons (BMO NRs) are designed as piezoelectric sonosensitizers for glutathione (GSH)-enhanced SDT. In cancer cells, BMO NRs can consume endogenous GSH to disrupt redox homeostasis, and the GSH-activated BMO NRs (GBMO) exhibit an oxygen-deficient structure, which can promote the separation of electron-hole pairs, thereby enhancing the efficiency of ROS production in SDT. The ultrathin GBMO NRs are piezoelectric, in which ultrasonic waves introduce mechanical strain to the nanoribbons, resulting in piezoelectric polarization and band tilting, thus accelerating toxic ROS production. The as-synthesized BMO NRs enable excellent computed tomography imaging of tumors and significant tumor suppression in vitro and in vivo. A piezoelectric Bi MoO sonosensitizer-mediated two-step enhancement SDT process, which is activated by endogenous GSH and amplified by exogenous ultrasound, is proposed. This process not only provides new options for improving SDT but also broadens the application of 2D piezoelectric materials as sonosensitizers in SDT.

摘要

降低活性氧(ROS)的清除能力和提高 ROS 产生是开发新型声动力学治疗(SDT)声敏剂的两个主要目标。因此,设计超薄二维 Bi MoO-聚乙二醇纳米带(BMO NRs)作为压电声敏剂用于谷胱甘肽(GSH)增强的 SDT。在癌细胞中,BMO NRs 可以消耗内源性 GSH 来破坏氧化还原平衡,并且 GSH 激活的 BMO NRs(GBMO)表现出缺氧结构,这可以促进电子-空穴对的分离,从而提高 SDT 中 ROS 产生的效率。超薄的 GBMO NRs 是压电的,其中超声波会在纳米带上引入机械应变,导致压电极化和能带倾斜,从而加速有毒 ROS 的产生。所合成的 BMO NRs 能够对肿瘤进行出色的计算机断层扫描成像,并在体外和体内显著抑制肿瘤。提出了一种由内源性 GSH 激活和外源性超声放大的压电 Bi MoO 声敏剂介导的两步增强 SDT 过程。该过程不仅为提高 SDT 提供了新的选择,而且拓宽了二维压电材料作为 SDT 声敏剂的应用。

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