College of Biological Science and Engineering, Fuzhou University, Fuzhou 350116, P. R. China.
Department of Diagnostic Radiology, Fujian Medical University Union Hospital, Fuzhou 350001, P. R. China.
Nano Lett. 2021 Apr 14;21(7):2926-2931. doi: 10.1021/acs.nanolett.1c00009. Epub 2021 Mar 26.
Tumor hypoxia and the tissue penetration limitation of excitation light hamper the widespread clinical use of photodynamic therapy. The development of new therapeutic strategies that can generate oxygen-independent free radicals without penetration depth limitation is of great demand. Herein, a novel magnetothermodynamic strategy for deep-seated tumor therapy is reported. In this system, a radical initiator (AIPH) was loaded into porous hollow iron oxide nanoparticles (PHIONs). Under the induction of an alternating magnetic field (AMF), PHIONs can generate heat to trigger the release and decomposition of AIPH, resulting in the generation of oxygen-independent alkyl radicals. The resulting alkyl radicals can effectively kill cancer cells under hypoxic conditions. More importantly, this magnetothermally triggered free-radical generator exhibits significant therapeutic efficacy for orthotopic liver tumors in a rat model. This magnetothermodynamic therapy strategy with the advantages of oxygen independence and no limitation of penetration depth holds great promise in deep-seated solid tumor treatment.
肿瘤缺氧和激发光的组织穿透限制阻碍了光动力疗法的广泛临床应用。因此,非常需要开发能够产生不依赖氧的自由基且不存在穿透深度限制的新治疗策略。本文报道了一种用于深部肿瘤治疗的新型磁热力学策略。在该体系中,将自由基引发剂(AIPH)装载到多孔中空氧化铁纳米粒子(PHIONs)中。在交变磁场(AMF)的诱导下,PHIONs 可以产热,从而触发 AIPH 的释放和分解,产生不依赖氧的烷基自由基。所产生的烷基自由基可以在缺氧条件下有效杀死癌细胞。更重要的是,这种磁热触发的自由基发生器在大鼠原位肝癌模型中表现出显著的治疗效果。这种具有不依赖氧和无穿透深度限制优势的磁热力学治疗策略在深部实体肿瘤治疗中具有广阔的应用前景。