Zhu Yanlin, Zhao Ruoxi, Feng Lili, Wang Wenzhuo, Xie Ying, Ding He, Liu Bin, Dong Shuming, Yang Piaoping, Lin Jun
Key Laboratory of Superlight Materials and Surface Technology, Ministry of Education, College of Materials Science and Chemical Engineering, Harbin Engineering University, Harbin, 150001, P. R. China.
State Key Laboratory of Rare Resource Utilization, Changchun Institute of Applied Chemistry, Chinese Academy of Sciences, Changchun, 130022, P. R. China.
Small Methods. 2024 Dec;8(12):e2400125. doi: 10.1002/smtd.202400125. Epub 2024 Mar 10.
Nanoformulations with endogenous/exogenous stimulus-responsive characteristics show great potential in tumor cell elimination with minimal adverse effects and high precision. Herein, an intelligent nanotheranostic platform (denoted as TPZ@Cu-SnS/PLL) for tumor microenvironment (TME) and near-infrared light (NIR) activated tumor-specific therapy is constructed. Copper (Cu) doping and the resulting sulfur vacancies can not only improve the response range of visible light but also improve the separation efficiency of photogenerated carriers and increase the carrier density, resulting in the ideal photothermal and photodynamic performance. Density functional theory calculations revealed that the introduction of Cu and resulting sulfur vacancies can induce electron redistribution, achieving favorable photogenerated electrons. After entering cells through endocytosis, the TPZ@Cu-SnS/PLL nanocomposites show the pH responsivity property for the release of the TPZ selectively within the acidic TME, and the released Cu can first interact with local glutathione (GSH) to deplete GSH with the production of Cu. Subsequently, the Cu-mediated Fenton-like reaction can decompose local hydrogen peroxide into hydroxyl radicals, which can also be promoted by hyperthermia derived from the photothermal effect for tumor cell apoptosis. The integration of photoacoustic/computed tomography imaging-guided NIR phototherapy, TPZ-induced chemotherapy, and GSH-elimination/hyperthermia enhanced chemodynamic therapy results in synergistic therapeutic outcomes without obvious systemic toxicity in vivo.
具有内源性/外源性刺激响应特性的纳米制剂在以最小的副作用和高精度消除肿瘤细胞方面显示出巨大潜力。在此,构建了一种用于肿瘤微环境(TME)和近红外光(NIR)激活的肿瘤特异性治疗的智能纳米诊疗平台(表示为TPZ@Cu-SnS/PLL)。铜(Cu)掺杂及由此产生的硫空位不仅可以提高可见光的响应范围,还可以提高光生载流子的分离效率并增加载流子密度,从而产生理想的光热和光动力性能。密度泛函理论计算表明,Cu的引入及由此产生的硫空位可以诱导电子重新分布,实现良好的光生电子。通过内吞作用进入细胞后,TPZ@Cu-SnS/PLL纳米复合材料在酸性TME中表现出pH响应特性,可选择性释放TPZ,释放出的Cu可首先与局部谷胱甘肽(GSH)相互作用,消耗GSH并产生Cu。随后,Cu介导的类芬顿反应可将局部过氧化氢分解为羟基自由基,光热效应产生的热疗也可促进这一过程,从而导致肿瘤细胞凋亡。光声/计算机断层扫描成像引导的近红外光疗法、TPZ诱导的化疗以及GSH消除/热疗增强的化学动力学疗法相结合,在体内产生协同治疗效果,且无明显全身毒性。