Ministry of Education Key Laboratory for the Green Preparation and Application of Functional Materials, Hubei Key Laboratory of Polymer Materials, School of Materials Science and Engineering, Hubei University, Wuhan, Hubei 430062, China.
Department of Gastroenterology, The First Affiliated Hospital of Nanchang University, 17 Yongwai Zheng Street, Nanchang 330006, Jiangxi, China.
J Colloid Interface Sci. 2022 Nov;625:614-627. doi: 10.1016/j.jcis.2022.06.030. Epub 2022 Jun 10.
A novel nanoplatform that supports multimodal imaging has been designed for deep tumor therapy. In this study, BiSe@CuSe heterojunction nanocomposites with tunable spectral absorption, effective electron-hole separation and high photothermal conversion efficiency were prepared for the combination therapy of phototherapy (PT), chemodynamic therapy (CDT) and radiotherapy (RT). By adjusting the doping ratio, the heterojunction nanoparticles show obvious tunable ability of local surface plasmon resonance and the ability to promote electron-hole separation with significantly enhanced reactive oxygen species production capacity. The band structure and charge density difference calculated by density functional theory further reveal that the change of band gap and the decrease of free carriers can regulate the spectral absorption of nanomaterials and promote electron-hole separation. In addition, the photothermal conversion properties of low carrier density semiconductors are related to their inherent deep level defects. The formation of heterojunctions making the Se atoms deviate from the BiSe lattice, resulting in more deep level defects and stronger photothermal conversion properties. Meanwhile, this nanoplatform presented features similar to catalase activities and glutathione (GSH) consumption characteristics, which was capable of effectively alleviate the tumor-specific hypoxia environment to enhance the efficacy of O-dependent photodynamic therapy (PDT) and radiotherapy (RT) and depletion GSH to prevent the reduction of therapeutic efficacy due to the clearance of reactive oxygen species. In addition to therapeutic enhancement, heterojunction nanomaterials have excellent nuclear magnetic resonance imaging (MRI), infrared thermal imaging (IR) and computed tomography (CT) properties due to their significant paramagnetism and excellent photothermal conversion and X-ray attenuation capacities. In conclusion, our findings provide a new strategy for designing multi-function and efficient nanoplatform to treat tumor.
一种新型的支持多模态成像的纳米平台被设计用于深部肿瘤治疗。在这项研究中,制备了具有可调光谱吸收、有效载流子分离和高光热转换效率的 BiSe@CuSe 异质结纳米复合材料,用于光疗(PT)、化学动力学疗法(CDT)和放疗(RT)的联合治疗。通过调整掺杂比,异质结纳米粒子表现出明显的可调谐局域表面等离子体共振能力和促进载流子分离的能力,具有显著增强的活性氧产生能力。通过密度泛函理论计算的能带结构和电荷密度差进一步表明,带隙的变化和自由载流子的减少可以调节纳米材料的光谱吸收并促进载流子分离。此外,低载流子密度半导体的光热转换性能与其固有的深能级缺陷有关。异质结的形成使 Se 原子偏离 BiSe 晶格,导致更多的深能级缺陷和更强的光热转换性能。同时,该纳米平台表现出与过氧化氢酶活性和谷胱甘肽(GSH)消耗特性相似的特性,能够有效缓解肿瘤特异性缺氧环境,增强 O 依赖性光动力疗法(PDT)和放疗(RT)的疗效,并耗竭 GSH 以防止因清除活性氧而降低治疗效果。除了治疗增强外,由于具有显著的顺磁性和优异的光热转换和 X 射线衰减能力,异质结纳米材料还具有优异的磁共振成像(MRI)、红外热成像(IR)和计算机断层扫描(CT)特性。总之,我们的研究结果为设计多功能高效纳米平台治疗肿瘤提供了一种新策略。