State Key Laboratory of Chemical Resource Engineering, Beijing Advanced Innovation Center for Soft Matter Science and Engineering, Beijing University of Chemical Technology, Beijing, 100029, P. R. China.
Department Electrical and Electronic Engineering, The University of Hong Kong, Pokfulam Road, Hong Kong SAR, 999077, P. R. China.
J Nanobiotechnology. 2024 Jun 8;22(1):317. doi: 10.1186/s12951-024-02591-5.
Sonodynamic therapy (SDT), a promising strategy for cancer treatment with the ability for deep tissue penetration, has received widespread attention in recent years. Sonosensitizers with intrinsic characteristics for tumor-specific curative effects, tumor microenvironment (TME) regulation and tumor diagnosis are in high demand. Herein, amorphous CoBiMn-layered double hydroxide (a-CoBiMn-LDH) nanoparticles are presented as multifunctional sonosensitizers to trigger reactive oxygen species (ROS) generation for ultrasound (US) imaging-guided SDT. Hydrothermal-synthesized CoBiMn-LDH nanoparticles are etched via a simple acid treatment to obtain a-CoBiMn-LDH nanoparticles with abundant defects. The a-CoBiMn-LDH nanoparticles give greater ROS generation upon US irradiation, reaching levels ~ 3.3 times and ~ 8.2 times those of the crystalline CoBiMn-LDH nanoparticles and commercial TiO sonosensitizer, respectively. This excellent US-triggered ROS generation performance can be attributed to the defect-induced narrow band gap and promoted electrons and holes (e/h) separation. More importantly, the presence of Mn enables the a-CoBiMn-LDH nanoparticles to regulate the TME by decomposing HO into O for hypoxia relief and US imaging, and consuming glutathione (GSH) for protection against ROS clearance. Biological mechanism analysis shows that a-CoBiMn-LDH nanoparticles modified with polyethylene glycol can serve as a multifunctional sonosensitizer to effectively kill cancer cells in vitro and eliminate tumors in vivo under US irradiation by activating p53, apoptosis, and oxidative phosphorylation-related signaling pathways.
声动力学疗法(SDT)是一种具有深层组织穿透能力的有前途的癌症治疗策略,近年来受到了广泛关注。具有肿瘤特异性疗效、肿瘤微环境(TME)调节和肿瘤诊断内在特性的声敏剂需求很高。本文提出了无定形 CoBiMn 层状双氢氧化物(a-CoBiMn-LDH)纳米粒子作为多功能声敏剂,用于触发超声(US)成像引导 SDT 中的活性氧(ROS)生成。通过简单的酸处理对水热合成的 CoBiMn-LDH 纳米粒子进行蚀刻,以获得具有丰富缺陷的 a-CoBiMn-LDH 纳米粒子。a-CoBiMn-LDH 纳米粒子在 US 照射下产生更大的 ROS 生成,分别达到结晶 CoBiMn-LDH 纳米粒子和商业 TiO 声敏剂的水平的约 3.3 倍和 8.2 倍。这种优异的 US 触发的 ROS 生成性能可归因于缺陷诱导的窄带隙和促进的电子和空穴(e/h)分离。更重要的是,Mn 的存在使 a-CoBiMn-LDH 纳米粒子能够通过分解 HO 产生 O 来缓解缺氧和 US 成像,并消耗谷胱甘肽(GSH)来防止 ROS 清除,从而调节 TME。生物学机制分析表明,通过激活 p53、凋亡和氧化磷酸化相关信号通路,用聚乙二醇修饰的 a-CoBiMn-LDH 纳米粒子可以作为多功能声敏剂,在 US 照射下有效地杀死体外癌细胞并消除体内肿瘤。