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用于增强近红外光疗的动力-货物结构纳米牵引器,通过气体增强肿瘤穿透和呼吸受损的线粒体功能障碍实现

Motor-Cargo Structured Nanotractors for Augmented NIR Phototherapy via Gas-Boosted Tumor Penetration and Respiration-Impaired Mitochondrial Dysfunction.

作者信息

Wang Jing, Zhang Yi, Chen Huadong, Wu Yihan, Liu Jinliang, Che Hailong, Zhang Yong, Zhu Xiaohui

机构信息

School of Environmental and Chemical Engineering, Shanghai University, Shanghai, 200444, China.

Department of Medical Biochemistry and Molecular Biology, School of Medicine, Jinan University, Guangzhou, 510632, China.

出版信息

Adv Healthc Mater. 2024 Dec;13(30):e2402063. doi: 10.1002/adhm.202402063. Epub 2024 Oct 8.

Abstract

Tumor microenvironment, characterized by dense extracellular matrix and severe hypoxia, has caused pronounced resistance to photodynamic therapy (PDT). Herein, it has designed an artificial nitric oxide (NO) nanotractor with a unique "motor-cargo" structure, where a photoswitching upconversion nanoparticle (UCNP) core serves as the optical engine to harvest NIR light and asymmetrically coated mesoporous silica (SiO) shell acts as a cargo unit to load nitric oxide (NO) fuel molecule (RBS, Roussin's black salt) and PDT photosensitizer (ZnPc, zinc phthalocyanine). Upon illumination by 980 nm light, the UCNP emits blue light to excite RBS salt and release NO gas. On one hand, NO is used as the driving force to propel the particle with a high speed of ≈194 µm s that generates significant rupture stress (over 0.95 kPa) on cell membrane to promote cellular endocytosis and intratumoral penetration. On the other hand, NO enables to alleviate tumor hypoxia by inhibiting cellular respiration as an oxygen conserver. When the excitation is subsequently switched to 808 nm light, the UCNP emits red light, triggering ZnPc to produce large amount of reactive oxygen species for PDT treatment. This study explores Janus-typed nanostructures for cell-particle interaction and gas-assisted phototherapy, opening avenues for versatile bioapplications.

摘要

肿瘤微环境以密集的细胞外基质和严重缺氧为特征,对光动力疗法(PDT)产生了显著的抗性。在此,设计了一种具有独特“马达-货物”结构的人工一氧化氮(NO)纳米牵引器,其中光开关上转换纳米颗粒(UCNP)核心作为光学引擎来收集近红外光,不对称包覆的介孔二氧化硅(SiO)壳作为货物单元来装载一氧化氮(NO)燃料分子(RBS, Roussin黑盐)和PDT光敏剂(ZnPc,酞菁锌)。在980 nm光照射下,UCNP发出蓝光以激发RBS盐并释放NO气体。一方面,NO用作驱动力,以约194 µm s的高速推动颗粒,在细胞膜上产生显著的破裂应力(超过0.95 kPa),以促进细胞内吞作用和肿瘤内渗透。另一方面,NO作为氧气保存剂,通过抑制细胞呼吸来缓解肿瘤缺氧。当随后将激发光切换到808 nm光时,UCNP发出红光,触发ZnPc产生大量活性氧用于PDT治疗。本研究探索了用于细胞-颗粒相互作用和气体辅助光疗的Janus型纳米结构,为多功能生物应用开辟了道路。

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