Department of Oncology, Zhongda Hospital, Medical School, Southeast University, Nanjing, 210000, PR China.
School of Life Sciences, Department of Food Science and Biotechnology, Sejong University, Seoul, 05006, Republic of Korea.
Biochem Biophys Res Commun. 2023 Jan 1;638:51-57. doi: 10.1016/j.bbrc.2022.11.036. Epub 2022 Nov 17.
Multifunctional core-shell hybrids formed by integration of metal-organic framework (MOF) and functional materials have attracted extensive attention as promising theranostic nanoplatforms due to their combined novel properties and enhanced therapeutic efficacy. Recently, the second near-infrared (NIR-II, 1000-1700 nm) laser-induced photothermal therapy (PTT) as compared to the NIR-I(700-950 nm) laser-induced PTT has displayed improved therapeutic effects owing to its merits that include deeper tissue penetration and increased maximum permissible exposure. Herein, a novel core-shell hollow copper sulfide@metal-organic framework (HCuS@MIL-100) has been successfully fabricated by a layer-by-layer technique for the first time and their collective theranostic effects are investigated in vitro and in vivo. In this platform, the inner HCuS was applied as the NIR-II photothermal agent with excellent NIR-II absorption feature, leading to impressive photothermal effects under irradiation by 1064 nm light. With MIL-100 as the shell, HCuS@MIL-100 not only displayed optimal biocompatibility but also presented superior T2 magnetic resonance imaging (MRI) ability. In the current study multifunctional hollow core-shell HCuS@MIL-100 are fabricated for the MRI-guided PTT. This study also offers a facile and effective strategy for the development of novel theranostic platforms with high efficiency through the integration of MOFs and functional materials.
多功能核壳杂化材料是通过将金属有机骨架(MOF)与功能材料集成而形成的,由于其具有新颖的组合特性和增强的治疗效果,作为有前途的治疗学纳米平台引起了广泛关注。最近,与近红外一区(NIR-I,700-950nm)激光诱导的光热疗法(PTT)相比,近红外二区(NIR-II,1000-1700nm)激光诱导的 PTT 由于其具有更深的组织穿透性和增加的最大允许暴露量等优点,显示出了更好的治疗效果。本文首次通过层层技术成功制备了一种新型核壳空心硫化铜@金属有机骨架(HCuS@MIL-100),并对其在体外和体内的联合治疗效果进行了研究。在该平台中,内部 HCuS 用作具有优异近红外二区吸收特性的 NIR-II 光热剂,在 1064nm 光照射下产生令人印象深刻的光热效应。由于 MIL-100 作为壳,HCuS@MIL-100 不仅表现出最佳的生物相容性,而且还具有优异的 T2 磁共振成像(MRI)能力。在当前的研究中,多功能空心核壳 HCuS@MIL-100 被用于 MRI 引导的 PTT。该研究还为通过 MOF 和功能材料的集成开发高效的新型治疗学平台提供了一种简单有效的策略。