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负载铜的纳米异质结通过氧化应激和细胞铜死亡实现卓越的原位骨肉瘤治疗

Copper-Loaded Nanoheterojunction Enables Superb Orthotopic Osteosarcoma Therapy via Oxidative Stress and Cell Cuproptosis.

作者信息

Xia Jiechao, Hu Chuan, Ji Yinwen, Wang Min, Jin Yang, Ye Lin, Xie Dingqi, Jiang Sicheng, Li Renhong, Hu Zhijun, Dai Jiayong

机构信息

Department of Orthopaedic Surgery, Key Laboratory of Musculoskeletal System Degeneration and Regeneration Translational Research of Zhejiang Province, Sir Run Run Shaw Hospital, Medical College of Zhejiang University, Hangzhou 310016, China.

The Children's Hospital, National Clinical Research Center for Child Health, Medical College of Zhejiang University, Hangzhou 310052, China.

出版信息

ACS Nano. 2023 Nov 14;17(21):21134-21152. doi: 10.1021/acsnano.3c04903. Epub 2023 Oct 30.

Abstract

Catalytic tumor therapy based on two-dimensional (2D) nanomaterials is a burgeoning and promising tumor therapeutic modality. However, the inefficient utilization and conversion of exogenous stimulation, single catalytic modality, and unsatisfactory therapeutic efficiency in the tumor microenvironment (TME) have seriously restricted their further application in tumor therapy. Herein, the heterogeneous carbon nitride-based nanoagent named T-HCN@CuMS was successfully developed, which dramatically improved the efficiency of the tumor therapeutic modality. Benefiting from the donor-acceptor (triazine-heptazine) structure within the heterogeneous carbon nitride nanosheets (HCN) and the construction of interplanar heterostructure with copper loaded metallic molybdenum bisulfide nanosheets (CuMS), T-HCN@CuMS presented a favorable photo-induced catalytic property to generate abundant reactive oxygen species (ROS) under near-infrared (NIR) light irradiation. Besides, the choice of CuMS simultaneously enabled this nanoagent to efficiently catalyze the Fenton-like reaction and trigger cell cuproptosis, a recently recognized regulated cell death mode characterized by imbalanced intracellular copper homeostasis and aggregation of lipoylated mitochondrial proteins. Moreover, upon surface modification with cRGD-PEG-DSPE, T-HCN@CuMS was prepared and endowed with improved dispersibility and αβ integrins targeting ability. In general, through the rational design, T-HCN@CuMS was facilely prepared and had achieved satisfactory antitumor and antimetastasis outcomes both and in a high-metastatic orthotopic osteosarcoma model. This strategy could offer an idea to treat malignant diseases based on 2D nanomaterials.

摘要

基于二维(2D)纳米材料的催化肿瘤治疗是一种新兴且有前景的肿瘤治疗方式。然而,外源性刺激的低效利用与转化、单一催化模式以及在肿瘤微环境(TME)中不尽人意的治疗效率严重限制了它们在肿瘤治疗中的进一步应用。在此,成功开发了一种名为T-HCN@CuMS的异质结构氮化碳基纳米剂,它显著提高了肿瘤治疗方式的效率。得益于异质结构氮化碳纳米片(HCN)内的供体-受体(三嗪-七嗪)结构以及与负载铜的二硫化钼纳米片(CuMS)构建的面内异质结构,T-HCN@CuMS在近红外(NIR)光照射下呈现出良好的光诱导催化性能,可产生大量活性氧(ROS)。此外,CuMS的选择同时使这种纳米剂能够高效催化类芬顿反应并引发细胞铜死亡,这是一种最近被认识的程序性细胞死亡模式,其特征是细胞内铜稳态失衡和脂酰化线粒体蛋白聚集。此外,通过用cRGD-PEG-DSPE进行表面修饰,制备了T-HCN@CuMS,并赋予其改善的分散性和αβ整合素靶向能力。总体而言,通过合理设计,T-HCN@CuMS被轻松制备出来,并在原位高转移性骨肉瘤模型中实现了令人满意的抗肿瘤和抗转移效果。该策略可为基于二维纳米材料治疗恶性疾病提供思路。

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