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负载甲氨蝶呤的双金属(Fe/Mn)掺杂ZIF-8纳米复合材料包覆双硫醚用于光热/化学动力学/化疗协同效应治疗癌症

Construction of Methotrexate-Loaded BiS Coated with Fe/Mn-Bimetallic Doped ZIF-8 Nanocomposites for Cancer Treatment Through the Synergistic Effects of Photothermal/Chemodynamic/Chemotherapy.

作者信息

Dash Pranjyan, Nataraj Nandini, Panda Pradeep Kumar, Tseng Ching-Li, Lin Yu-Chien, Sakthivel Rajalakshmi, Chung Ren-Jei

机构信息

Department of Chemical Engineering and Biotechnology, National Taipei University of Technology (Taipei Tech), Taipei 10608, Taiwan.

Department of Chemical Engineering and Materials Science, Yuan Ze University, Taoyuan City 32003, Taiwan.

出版信息

ACS Appl Mater Interfaces. 2025 Jan 8;17(1):222-234. doi: 10.1021/acsami.4c13465. Epub 2024 Oct 17.

Abstract

A combination of therapeutic modalities in a single nanostructure is crucial for a successful cancer treatment. Synergistic photothermal therapy (PTT) can enhance the effects of chemodynamic therapy (CDT) and chemotherapy, which could intensify the therapeutic efficacy to induce cancer cell apoptosis. In this study, Fe and Mn on a zeolitic imidazolate framework (ZIF-8) (Fe/Mn-ZIF-8; FMZ) were synthesized through ion deposition. Furthermore, bismuth sulfide nanorods (BiS NRs; BS NRs) were synthesized via a hydrothermal process and coated onto FMZ to generate the core-shell structure of the BiS@FMZ nanoparticles (B@FMZ). Next, methotrexate (MTX) was loaded effectively onto the porous surface of ZIF-8 to form the B@FMZ/MTX nanoparticles. The Fenton-like reaction catalyzes Fe/Mn ions by decomposing HO in the tumor microenvironment, resulting in the formation of toxic hydroxyl radicals (·OH), which promotes the CDT effect of killing cancer cells. Furthermore, under 808 nm laser irradiation, these B@FMZ nanoparticles showed a strong PTT effect, owing to the presence of intense BS NRs as a photothermal agent. The B@FMZ nanoparticles exhibited a prominent drug release efficiency of 87.25% at pH 5.5 under near-infrared laser irradiation due to the PTT effect can promote the drug delivery performance. The B@FMZ nanoparticles were subjected to dual-modal imaging, guided magnetic resonance imaging, and X-ray computed tomography imaging. Both and results suggested that the B@FMZ/MTX nanoparticles exhibited enhanced antitumor effects through the combined therapeutic effects of PTT, CDT, and chemotherapy. Therefore, these nanoparticles exhibit good biocompatibility and are promising candidates for cancer treatment.

摘要

在单一纳米结构中结合多种治疗方式对于成功的癌症治疗至关重要。协同光热疗法(PTT)可增强化学动力疗法(CDT)和化疗的效果,从而增强诱导癌细胞凋亡的治疗功效。在本研究中,通过离子沉积合成了沸石咪唑酯骨架(ZIF-8)上的铁和锰(Fe/Mn-ZIF-8;FMZ)。此外,通过水热法合成了硫化铋纳米棒(BiS NRs;BS NRs),并将其包覆在FMZ上,以生成BiS@FMZ纳米颗粒(B@FMZ)的核壳结构。接下来,将甲氨蝶呤(MTX)有效负载到ZIF-8的多孔表面上,形成B@FMZ/MTX纳米颗粒。类芬顿反应通过在肿瘤微环境中分解HO来催化Fe/Mn离子,从而产生有毒的羟基自由基(·OH),这促进了杀死癌细胞的CDT效应。此外,在808 nm激光照射下,由于存在强烈的BS NRs作为光热剂,这些B@FMZ纳米颗粒表现出很强的PTT效应。由于PTT效应可促进药物递送性能,B@FMZ纳米颗粒在近红外激光照射下于pH 5.5时表现出87.25%的显著药物释放效率。B@FMZ纳米颗粒进行了双模态成像、磁共振成像引导和X射线计算机断层扫描成像。 和 结果均表明,B@FMZ/MTX纳米颗粒通过PTT、CDT和化疗的联合治疗作用表现出增强的抗肿瘤效果。因此,这些纳米颗粒具有良好的生物相容性,是癌症治疗的有前途的候选者。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/71d9/11783362/56c52dd6907b/am4c13465_0009.jpg

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