治疗性阿霉素封装FeAu alloy@metal-organic框架纳米结构使口腔癌的磁热疗和医学成像成为可能

IF 4.7 4区 医学 Q1 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
Udesh Dhawan PhD , Ching-Li Tseng PhD , Ping-Hsuan Wu MSc , Mei-Yi Liao PhD , Huey-Yuan Wang DDS , Kevin C.-W. Wu PhD , Ren-Jei Chung PhD
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引用次数: 4

摘要

金属有机框架(mof)由于能够包裹磁性纳米颗粒,从而降低细胞毒性和高孔隙率,使化学药物包封成为癌症治疗领域有吸引力的候选者。本文合成了FeAu纳米颗粒(FeAu NPs),并涂覆MIL-100(Fe) mof以制备FeAu@MOF纳米结构。我们将阿霉素封装在纳米结构中,并评估了该平台用于医学成像和癌症治疗的适用性。FeAu@MOF纳米结构(FeAu@MIL-100(Fe))在交变磁场(AMF)刺激下表现出超顺磁性和磁热行为,DOX包封和释放效率分别为69.95%和97.19%。体外实验表明,amf诱导的热疗导致90%的HSC-3口腔鳞癌细胞死亡,提示其在癌症治疗中的应用。最后,在体内小鼠模型中,FeAu@MOF纳米结构改善了图像对比度,将肿瘤体积缩小了30倍,肿瘤重量减少了10倍,从而提高了累积生存期,突出了该平台用于口腔癌治疗的前景。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Theranostic doxorubicin encapsulated FeAu alloy@metal-organic framework nanostructures enable magnetic hyperthermia and medical imaging in oral carcinoma

Theranostic doxorubicin encapsulated FeAu alloy@metal-organic framework nanostructures enable magnetic hyperthermia and medical imaging in oral carcinoma

Metal-organic frameworks (MOFs) have emerged as attractive candidates in cancer theranostics due to their ability to envelop magnetic nanoparticles, resulting in reduced cytotoxicity and high porosity, enabling chemodrug encapsulation. Here, FeAu alloy nanoparticles (FeAu NPs) are synthesized and coated with MIL-100(Fe) MOFs to fabricate FeAu@MOF nanostructures. We encapsulated Doxorubicin within the nanostructures and evaluated the suitability of this platform for medical imaging and cancer theranostics. FeAu@MOF nanostructures (FeAu@MIL-100(Fe)) exhibited superparamagnetism, magnetic hyperthermia behavior and displayed DOX encapsulation and release efficiency of 69.95 % and 97.19 %, respectively, when stimulated with alternating magnetic field (AMF). In-vitro experiments showed that AMF-induced hyperthermia resulted in 90 % HSC-3 oral squamous carcinoma cell death, indicating application in cancer theranostics. Finally, in an in-vivo mouse model, FeAu@MOF nanostructures improved image contrast, reduced tumor volume by 30-fold and tumor weight by 10-fold, which translated to enhancement in cumulative survival, highlighting the prospect of this platform for oral cancer treatment.

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来源期刊
CiteScore
8.10
自引率
3.60%
发文量
104
审稿时长
4.6 months
期刊介绍: Nanomedicine: Nanotechnology, Biology and Medicine (NBM) is an international, peer-reviewed journal presenting novel, significant, and interdisciplinary theoretical and experimental results related to nanoscience and nanotechnology in the life and health sciences. Content includes basic, translational, and clinical research addressing diagnosis, treatment, monitoring, prediction, and prevention of diseases.
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