Yang Yue, Zheng Wen, Zhang Jiabao, Guo Jiangxue, Liu Qian, Wang Hanyang, Xu Fanxing, Bao Zhihong
School of Pharmacy, Shenyang Key Laboratory of Functional Drug Carrier Materials, Shenyang Pharmaceutical University, Shenyang 110016, China.
Wuya College of Innovation, Shenyang Pharmaceutical University, Shenyang 110016, China.
ACS Appl Bio Mater. 2025 Jan 20;8(1):676-687. doi: 10.1021/acsabm.4c01538. Epub 2024 Dec 30.
A multifunctional nanoplatform integrating multiple therapeutic functions may be an effective strategy to realize satisfactory therapeutic efficacy in the treatment of tumors. However, there is still a certain challenge in integrating multiple therapeutic agents into a single formulation using a simple method due to variations in their properties. In this work, multifunctional CuS-ICG@PDA-FA nanoparticles (CIPF NPs) with excellent ability to produce reactive oxygen species and photothermal conversion performance are fabricated by a simple and gentle method. Hollow mesoporous copper sulfide nanoparticles (HMCuS NPs) not only have excellent loading and photothermal conversion performance but also can cause a highly efficient Fenton-like reaction for chemodynamic therapy (CDT). The loaded photosensitizer indocyanine green (ICG) imparts excellent photodynamic properties to the NPs, which in turn enhances the stability of ICG. The polydopamine (PDA) coating improves the stability and biocompatibility of the NPs and creates the conditions for surface modification of folic acid. The FA-coated NPs show precise targeting of tumor cells. The results of the cellular uptake assay demonstrate that CIPF NPs enter tumor cells through an endocytic pathway. Lysosome colocalization and escape experiments prove that CIPF NPs possess good lysosomal escape ability under irradiation of NIR. Both and antitumor studies of CIPF NPs reveal excellent efficacy in photothermal/photodynamic/chemodynamic therapy. The construction of high-performance CIPF NPs offers valuable insights into the design of a multifunctional copper sulfide-based nanoplatform for combined cancer treatment and precise theranostics.
整合多种治疗功能的多功能纳米平台可能是在肿瘤治疗中实现令人满意的治疗效果的有效策略。然而,由于多种治疗剂性质的差异,使用简单方法将它们整合到单一制剂中仍存在一定挑战。在这项工作中,通过一种简单温和的方法制备了具有优异产生活性氧能力和光热转换性能的多功能硫化铜-吲哚菁绿@聚多巴胺-叶酸纳米颗粒(CIPF NPs)。中空介孔硫化铜纳米颗粒(HMCuS NPs)不仅具有优异的负载和光热转换性能,还能引发高效的类芬顿反应用于化学动力学疗法(CDT)。负载的光敏剂吲哚菁绿(ICG)赋予纳米颗粒优异的光动力性质,进而提高了ICG的稳定性。聚多巴胺(PDA)涂层提高了纳米颗粒的稳定性和生物相容性,并为叶酸的表面修饰创造了条件。叶酸修饰的纳米颗粒显示出对肿瘤细胞的精确靶向性。细胞摄取试验结果表明,CIPF NPs通过内吞途径进入肿瘤细胞。溶酶体共定位和逃逸实验证明,CIPF NPs在近红外照射下具有良好的溶酶体逃逸能力。CIPF NPs的体内外抗肿瘤研究均显示出在光热/光动力/化学动力学疗法中的优异疗效。高性能CIPF NPs的构建为设计用于联合癌症治疗和精确诊疗的多功能硫化铜基纳米平台提供了有价值的见解。