Academy of Medical Engineering and Translational Medicine, Medical College, Tianjin University, Tianjin, 300072, China.
School of Pharmaceutical Sciences (Shenzhen), Sun Yat-sen University, Guangzhou, 510275, China.
Nat Commun. 2022 May 3;13(1):2425. doi: 10.1038/s41467-022-30166-1.
Limited substrates content is a major hurdle dampening the antitumor effect of catalytic therapy. Herein, a two-dimensional interplanar heterojunction (FeOCl/FeOOH NSs) with ·OH generation under ultrasound irradiation is fabricated and utilized for catalytic cancer therapy. This interplanar heterojunction is prepared through replacing chlorine from iron oxychloride with hydroxyl. Benefiting from the longer hydroxyl bond length and enhanced affinity with water, the alkali replacement treatment integrates interplanar heterojunction synthesis and exfoliation in one step. In particular, a build-in electric field facilitated Z-scheme interplanar heterojunction is formed due to the aligning Fermi levels. The holes on the valence band of FeOCl have great ability to catalyze O evolution from HO, meanwhile, the generated O is immediately and directly reduced to HO by the electrons on the conductive band of FeOOH. The self-supplying HO ability guarantees efficient ·OH generation via the Fenton-like reaction catalyzed by FeOCl/FeOOH NSs, which exhibits excellent anti-tumor performance.
有限的底物含量是抑制催化治疗抗肿瘤作用的主要障碍。在此,通过超声辐照下生成·OH,制备了具有二维层间异质结(FeOCl/FeOOH NSs)的材料,并将其用于催化癌症治疗。该层间异质结是通过用羟基取代氧氯化铁中的氯来制备的。得益于更长的羟基键长和增强的与水的亲和力,碱取代处理在一步中集成了层间异质结合成和剥离。特别地,由于费米能级对齐,形成了内置电场促进的 Z 型层间异质结。FeOCl 价带上的空穴具有很大的能力来催化 HO 从 O 中释放,同时,生成的 O 通过 FeOOH 导带中的电子立即被直接还原为 HO。HO 的自供给能力通过 FeOCl/FeOOH NSs 催化的类 Fenton 反应保证了高效的·OH 生成,从而表现出优异的抗肿瘤性能。