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一种新型蛋黄壳结构 FeO@介孔碳纳米粒子作为一种有效的肿瘤靶向纳米载体,用于改善化疗和光热治疗。

A Novel Yolk-Shell FeO@ Mesoporous Carbon Nanoparticle as an Effective Tumor-Targeting Nanocarrier for Improvement of Chemotherapy and Photothermal Therapy.

机构信息

Research Center of Biomedical Engineering of Xiamen, Key Laboratory of Biomedical Engineering of Fujian Province, Department of Biomaterials, College of Materials, Xiamen University, Xiamen 361005, China.

Key Laboratory of Design and Assembly of Functional Nanostructures, Fujian Institute of Research on the Structure of Matter, Chinese Academy of Sciences, Fuzhou 350002, China.

出版信息

Int J Mol Sci. 2022 Jan 30;23(3):1623. doi: 10.3390/ijms23031623.

Abstract

Owing to their good stability and high photothermal conversion efficiency, the development of carbon-based nanoparticles has been intensively investigated, while the limitation of unsatisfactory cellular internalization impedes their further clinical application. Herein, we report a novel strategy for fabrication of FeO yolk-shell mesoporous carbon nanocarriers (FeO@hmC) with monodispersity and uniform size, which presented significantly higher cell membrane adsorption and cellular uptake properties in comparison with common solid silica-supported mesoporous carbon nanoparticles with core-shell structure. Moreover, the MRI performance of this novel Fe-based nanoparticle could facilitate precise tumor diagnosis. More importantly, after DOX loading (FeO@hmC-DOX), owing to synergistic effect of chemo-phototherapy, this therapeutic agent exhibited predominant tumor cell ablation capability under 808 nm NIR laser irradiation, both in vitro and in vivo. Our work has laid a solid foundation for therapeutics with hollowed carbon shell for solid tumor diagnosis and therapy in clinical trials.

摘要

由于其良好的稳定性和高光热转换效率,碳基纳米粒子的开发得到了广泛的研究,而细胞内化效果不理想的局限性阻碍了它们在临床上的进一步应用。在此,我们报告了一种制备具有单分散性和均匀尺寸的 FeO 蛋黄壳介孔碳纳米载体(FeO@hmC)的新策略,与常见的具有核壳结构的实心二氧化硅负载介孔碳纳米粒子相比,其具有更高的细胞膜吸附和细胞摄取特性。此外,这种新型 Fe 基纳米粒子的 MRI 性能有助于精确的肿瘤诊断。更重要的是,在负载 DOX(FeO@hmC-DOX)后,由于化学-光疗的协同作用,该治疗剂在 808nmNIR 激光照射下,无论是在体外还是体内,均表现出显著的肿瘤细胞消融能力。我们的工作为空心碳壳在临床试验中的实体肿瘤诊断和治疗奠定了坚实的基础。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ef89/8835829/f119c4e043c8/ijms-23-01623-g001.jpg

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