Zhu Shunhua, Ning Yunyun, Zhang Min, Wei Feng, Li Suli, Wang Meng, Dong Fuxing, Liu Xiaoxiao, Li Shibao, Huang Qingli
Medical Technology School of Xuzhou Medical University, Xuzhou, Jiangsu 221004, PR China; Public Experimental Research Center of Xuzhou Medical University, Xuzhou city, Jiangsu 221004, China.
Medical Technology School of Xuzhou Medical University, Xuzhou, Jiangsu 221004, PR China.
Colloids Surf B Biointerfaces. 2025 Oct;254:114834. doi: 10.1016/j.colsurfb.2025.114834. Epub 2025 May 29.
Developing appropriate nanoplatforms with enhanced properties to increase the efficiency of the nano-based strategies is an urgent challenge for cancer therapy. In this work, a S, Pd modified hollow CoNiMnFe Prussian blue analogue nanocomposite (Pd-S-CNMF) was prepared as multifunctional nanoplatform for magnetic resonance imaging (MRI) guided for combined cascade catalyzed therapy and low-temperature photothermal therapy. We found that the co-modification of S and Pd on CNMF could enhance the responsive feature the as-prepared nanocomposite to acidic environment, which endowed the Pd-S-CNMF with multiple enzyme mimicking activities and enhanced NIR light absorption. To construct efficient nanoplatform for prostate cancer therapy, a HSP 90 protein inhibitor, tanespimycin was loaded on Pd-S-CNMF (17Pd-S-CNMF) to inhibit the level of HSP 90 protein, thus increasing the outcome of subsequent photothermal therapy. The constructed 17Pd-S-CNMF is expected to remodel tumor microenvironment (TME), generate sufficient highly toxic reactive oxygen species (ROS) and hyperthermia to enhance the efficacy of chemodynamic therapy (CDT) and photothermal therapy (PTT). In addition, comparing to the pristine CNMF and S doped CNMF, the as-prepared Pd-S-CNMF possessed superior magnetic TME sensitive magnetic resonance imaging (MRI) performance. Benefiting from these amazing properties, the as-prepared 17Pd-S-CNMF could effectively inhibit the growth of prostate cancer in vitro and vivo. Our findings provide a paradigm for construction of efficient nanocomposites as nanoplatform for cancer diagnose and treatment.
开发具有增强性能的合适纳米平台以提高基于纳米的策略的效率,是癌症治疗面临的一项紧迫挑战。在这项工作中,制备了一种硫、钯修饰的中空钴镍锰铁普鲁士蓝类似物纳米复合材料(Pd-S-CNMF),作为用于磁共振成像(MRI)引导的联合级联催化治疗和低温光热治疗的多功能纳米平台。我们发现,在CNMF上共修饰硫和钯可以增强所制备的纳米复合材料对酸性环境的响应特性,这赋予了Pd-S-CNMF多种酶模拟活性并增强了近红外光吸收。为构建用于前列腺癌治疗的高效纳米平台,将一种热休克蛋白90(HSP 90)抑制剂坦螺旋霉素负载到Pd-S-CNMF上(17Pd-S-CNMF)以抑制HSP 90蛋白水平,从而提高后续光热治疗的效果。所构建的17Pd-S-CNMF有望重塑肿瘤微环境(TME),产生足够的高毒性活性氧(ROS)和热疗,以增强化学动力疗法(CDT)和光热疗法(PTT)的疗效。此外,与原始CNMF和硫掺杂的CNMF相比,所制备的Pd-S-CNMF具有优异的对TME敏感的磁共振成像(MRI)性能。受益于这些惊人的特性,所制备的17Pd-S-CNMF能够在体外和体内有效抑制前列腺癌的生长。我们的研究结果为构建高效纳米复合材料作为癌症诊断和治疗的纳米平台提供了一个范例。