Wang Shulong, Zhao Jingjin, Zhang Liangliang, Zhang Chaobang, Qiu Zhidong, Zhao Shulin, Huang Yong, Liang Hong
State Key Laboratory for the Chemistry and Molecular Engineering of Medicinal Resources, School of Chemistry and Pharmaceutical Science, Guangxi Normal University, Guilin, 541004, China.
Adv Healthc Mater. 2022 Feb;11(3):e2102073. doi: 10.1002/adhm.202102073. Epub 2021 Nov 12.
The accurate diagnosis and targeted therapy of malignant tumors face significant challenges. To address these, an oxidized molybdenum polyoxometalate-copper nanocomposite (Ox-POM@Cu) is designed and synthesized here. The doping with Cu determines the formation of oxygen vacancies, which can increase the carrier concentration in Ox-POM@Cu, accelerate electron transfer, and enhance the redox activity, thus playing an efficient catalytic role. The nanocomposite presents unique enzymatic functions characterized by a multielement catalytic activity in the tumor microenvironment (TME). In addition, it can be employed as an NIR-II photoacoustic imaging (PAI) probe and cancer therapy agent. First, it participates in a redox reaction with glutathione (GSH) in tumor tissues, activates the PAI and photothermal therapy functions via NIR-II irradiation, and depletes the GSH supply in cancerous cells. Subsequently, it catalyzes a Fenton-like reaction with H O in tumor tissues to form hydroxyl radicals, thereby performing a chemodynamic therapy function. The findings show that the developed nanoenzyme is very efficient in the diagnosis and treatment of malignant tumors. This work not only provides a new strategy for the design of TME-induced NIR-II PAI but also presents new insights into enhanced cancer therapy.
恶性肿瘤的准确诊断和靶向治疗面临重大挑战。为解决这些问题,本文设计并合成了一种氧化钼多金属氧酸盐-铜纳米复合材料(Ox-POM@Cu)。铜的掺杂决定了氧空位的形成,这可以增加Ox-POM@Cu中的载流子浓度,加速电子转移,并增强氧化还原活性,从而发挥高效的催化作用。该纳米复合材料具有独特的酶功能,其特征在于在肿瘤微环境(TME)中具有多元素催化活性。此外,它还可以用作近红外二区光声成像(PAI)探针和癌症治疗剂。首先,它与肿瘤组织中的谷胱甘肽(GSH)发生氧化还原反应,通过近红外二区照射激活PAI和光热治疗功能,并耗尽癌细胞中的GSH供应。随后,它在肿瘤组织中催化与H₂O₂的类芬顿反应以形成羟基自由基,从而发挥化学动力治疗功能。研究结果表明,所开发的纳米酶在恶性肿瘤诊断和治疗方面非常有效。这项工作不仅为TME诱导的近红外二区PAI设计提供了新策略,还为增强癌症治疗提供了新见解。