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介孔碳纳米笼封装的金属有机水凝胶的光热响应智能杂化体用于敏化光热治疗。

Photothermal-Responsive Intelligent Hybrid of Hierarchical Carbon Nanocages Encapsulated by Metal-Organic Hydrogels for Sensitized Photothermal Therapy.

机构信息

State Key Laboratory of Analytical Chemistry for Life Science, School of Chemistry and Chemical Engineering, Nanjing University, Nanjing, 210023, China.

Institute of Clinical Pharmacy, Jining No. 1 People's Hospital, Jining Medical University, Jining, 272000, China.

出版信息

Adv Healthc Mater. 2023 Oct;12(26):e2300834. doi: 10.1002/adhm.202300834. Epub 2023 May 1.

Abstract

Hierarchical carbon nanocages as emerging nanomaterials have a great potential for photothermal therapy due to their unique porous structure, high specific surface area, and excellent photothermal property. Herein, a hierarchical nitrogen-doped carbon nanocage (hNCNC) is introduced as a second near-infrared photothermal agent, and then functionalizes it with metal-organic hydrogel (MOG) to form a thermal-responsive switch for sensitized photothermal therapy. Upon 1064 nm light irradiation, the hNCNCs exhibit a remarkable photothermal conversion efficiency of 65.9% owing to a high near-infrared extinction coefficient. Meanwhile, due to the hierarchical structure, hNCNCs show 60.2% (wt./wt.) loading efficiency of quercetin, a heat shock protein (Hsp70) inhibitor. Through thermal-driven dry-gel transformation, the coating MOGs intelligently release the encapsulated quercetin for sensitizing cancer cells to heat. Based on the synergistic effect of hyperthermia elevation and thermal-driven drug release, the dual thermal utilization platform achieves effective photothermal tumor ablation in vivo under low concentration of hNCNCs and mild irradiation, which provides a new diagram of intelligent responsive photothermal agents for enhanced photothermal therapy.

摘要

分层碳纳米笼作为新兴纳米材料,由于其独特的多孔结构、高比表面积和优异的光热性能,在光热治疗中具有巨大的潜力。本文引入了一种分层氮掺杂碳纳米笼(hNCNC)作为第二代近红外光热试剂,并进一步将其功能化,形成金属有机水凝胶(MOG),构建热敏开关,用于敏化光热治疗。在 1064nm 光照射下,hNCNCs 由于具有较高的近红外消光系数,表现出显著的光热转换效率(65.9%)。同时,由于其分层结构,hNCNCs 对槲皮素(一种热休克蛋白(Hsp70)抑制剂)的负载效率高达 60.2%(wt./wt.)。通过热驱动的干凝胶转变,涂层 MOGs 智能地释放封装的槲皮素,以敏化癌细胞对热的反应。基于高热升高和热驱动药物释放的协同效应,双热利用平台在低浓度 hNCNCs 和温和照射下实现了有效的光热肿瘤消融,为增强光热治疗提供了一种新的智能响应光热试剂图。

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