Fe-O-Mo位点活化纳米酶用于双酶/上转化协同催化抗癌治疗。

IF 16.9
Qiang Wang, Shuang Liu, Chunsheng Li, Yaru Huang, Boqi An, Meng Wang, Jiawei Qu, Peiyao Wang, Jiating Xu, Ping'an Ma
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引用次数: 0

摘要

单原子纳米酶(SAzymes)有望用于癌症治疗,但存在活性位点密度低和中间吸附/解吸能力有限的问题。本研究将Fe/Mo双原子硅基半导体纳米酶(FeMoDA)包裹在镧系掺杂纳米颗粒(LPs)中,并用透明质酸(HA)进行表面修饰(标记为HA/FeMoDA-LPs),在第二波近红外(NIR-II)/磁共振(MR)成像引导下,用于协同双酶/上转化触发催化治疗(ET/UCT)。密度泛函理论计算表明,Fe/Mo双原子位点通过Fe - O - Mo配位桥接,优化了含氧中间体的吸附/解吸,提高了双酶活性。HA/FeMoDA-LPs具有过氧化物酶(POD)样催化性能,Km为11.54 mM, Vmax为1.14 × 10-7 M·s-1,优于Fe或mo单原子涂层LPs。羟基磷灰石修饰促进了内吞作用(~ 5.67倍)和微环境酸化(pH从7.21到6.74),进一步提高了ET。在980 nm照射下,上转化触发的电子与类氧化酶活性协同将O2转化为超氧化物(•O2 -),空穴使•O2 -转化为单线态氧(1O2),并与类pod产生的羟基自由基(•OH)结合,实现ET/UCT的协同。肿瘤H+和谷胱甘肽共同诱导纳米酶的特异性降解,导致肿瘤自我增强的下转换NIR-II和MR成像。与传统的SAzymes相比,HA/FeMoDA-LPs具有优越的催化性能和双模态成像,为癌症治疗提供了协同和肿瘤反应平台。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Fe-O-Mo Site-Activated Nanozymes for Bienzymatic/Upconversion Synergistic Catalytic Anticancer Therapy.

Single-atom nanozymes (SAzymes) hold promise for cancer therapy but suffer from low active site density and restricted intermediate adsorption/desorption capabilities. Herein, Fe/Mo dual-atom silicon-based semiconductor nanozymes (FeMoDA), encapsulated in lanthanide-doped nanoparticles (LPs) and surface-modified with hyaluronic acid (HA) (denoted as HA/FeMoDA-LPs), were developed for synergistic bienzymatic/upconversion-triggered catalytic therapy (ET/UCT) under second near-infrared (NIR-II)/magnetic resonance (MR) imaging guidance. Density functional theory calculations revealed that Fe/Mo dual-atom sites were bridged by Fe - O - Mo coordination, optimizing oxygen-containing intermediate adsorption/desorption, and improving dual-enzymatic activities. The peroxidase (POD)-like catalytic performance of HA/FeMoDA-LPs showed a Km of 11.54 mM and a Vmax of 1.14 × 10-7 M·s-1, outperforming Fe- or Mo-single-atom coated LPs. HA modification promoted endocytosis (∼5.67-fold) and microenvironmental acidification (pH from 7.21 to 6.74), further improving ET. Under 980 nm irradiation, upconversion-triggered electrons synergized with oxidase-like activity to convert O2 into superoxide (•O2 -), while holes enabled •O2 - to singlet oxygen (1O2) conversion, which combined with POD-like-produced hydroxyl radicals (•OH) to achieve synergistic ET/UCT. Tumor H+ and glutathione co-induced the specific degradation of nanozymes, resulting in tumor self-enhanced downconversion NIR-II and MR imaging. Compared with conventional SAzymes, HA/FeMoDA-LPs exhibit superior catalytic performance and dual-modal imaging, offering a synergistic and tumor-responsive platform for cancer theranostics.

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