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超声荷电化持久发光纳米粒子用于协同肿瘤治疗的自主运动和光热/NO 治疗。

Ultrasound-Chargeable Persistent Luminescence Nanoparticles to Generate Self-Propelled Motion and Photothermal/NO Therapy for Synergistic Tumor Treatment.

机构信息

Institute of Biomedical Engineering, College of Medicine, Southwest Jiaotong University, Chengdu 610031, P. R. China.

Key Laboratory of Advanced Technologies of Materials, Ministry of Education, School of Materials Science and Engineering, Southwest Jiaotong University, Chengdu 610031, P. R. China.

出版信息

ACS Nano. 2023 Aug 22;17(16):16089-16106. doi: 10.1021/acsnano.3c04906. Epub 2023 Jul 29.

Abstract

Cancer phototherapy indicates advantages in ease of manipulation, negligible drug resistance, and spatiotemporal control but is confronted with challenges in tumor cell accessibility and intermittent light excitation. Herein, we propose a strategy with persistent luminescence (PL)-excited photothermal therapy (PTT), concurrent thermophoresis-propelled motion, and PL-triggered NO release, where PL emission is chargeable by ultrasonication for readily applicable to deep tumors. Mechanoluminescent (ML) nanodots of SrAlO:Eu (SAOE) and PL nanodots of ZnGaO:Cr (ZGC) were deposited on mesoporous silicates to obtain mSZ nanoparticles (NPs), followed by partially coating with polydopamine (PDA) caps and loading NO donors to prepare Janus mSZ@PDA-NO NPs. The ML emission bands of SAOE nanodots overlap with the excitation band of ZGC, and the persistent near-infrared (NIR) emission could be repeatedly activated by ultrasonication. The PL emission acts as an internal NIR source to produce a thermophoretic force and NO gas propellers to drive the motion of Janus NPs. Compared with the commonly used intermittent NIR illumination at both 660 and 808 nm, the persistent motion of ultrasound-activated NPs enhances cellular uptake and long-lasting PTT and intracellular NO levels to combat tumor cells without the use of any chemotherapeutic drugs. The ultrasound-activated persistent motion promotes intratumoral accumulation and tumor distribution of PTT/NO therapeutics and exhibits significantly higher tumor growth inhibition, longer animal survival, and larger intratumoral NO levels than those who experience external NIR illumination. Thus, this study demonstrates a strategy to activate PL emissions and construct PL-excited nanomotors for phototherapy in deep tissues.

摘要

癌症光疗具有操作简便、耐药性低、时空可控等优点,但存在肿瘤细胞通透性和间歇性光激发等挑战。在此,我们提出了一种策略,即利用持久发光(PL)激发光热治疗(PTT)、同时热泳驱动运动和 PL 触发的一氧化氮(NO)释放,其中 PL 发射可通过超声充电,便于应用于深部肿瘤。SrAlO:Eu(SAOE)的机械发光(ML)纳米点和 ZnGaO:Cr(ZGC)的 PL 纳米点被沉积在介孔硅酸盐上以获得 mSZ 纳米颗粒(NPs),然后部分包覆聚多巴胺(PDA)帽并负载 NO 供体以制备 Janus mSZ@PDA-NO NPs。SAOE 纳米点的 ML 发射带与 ZGC 的激发带重叠,并且持久的近红外(NIR)发射可以通过超声反复激活。PL 发射充当内部 NIR 源,产生热泳力和 NO 气体推进剂来驱动 Janus NPs 的运动。与常用的间歇性 NIR 照明(660nm 和 808nm)相比,超声激活 NPs 的持续运动增强了细胞摄取和长时间的 PTT 和细胞内 NO 水平,从而在不使用任何化疗药物的情况下对抗肿瘤细胞。超声激活的持续运动促进了 PTT/NO 治疗剂在肿瘤内的积累和分布,并表现出比经历外部 NIR 照明更高的肿瘤生长抑制、更长的动物生存时间和更大的肿瘤内 NO 水平。因此,本研究展示了一种用于深部组织光疗的激活 PL 发射和构建 PL 激发纳米马达的策略。

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