College of Chemical and Biological Engineering, Zhejiang University, 866 Yuhangtang Rd, Hangzhou 310058, China.
MOE Key Laboratory of Macromolecular Synthesis and Functionalization, Department of Polymer Science and Engineering, Zhejiang University, 866 Yuhangtang Rd, Hangzhou 310058, China.
ACS Appl Bio Mater. 2024 Mar 18;7(3):1778-1789. doi: 10.1021/acsabm.3c01179. Epub 2024 Mar 4.
Inspired by the two kinds of naturally occurring peroxidases (POD) with vanadium or heme (iron)-based active catalytic centers, we have developed a dual metal-based nanozyme with dual V and Fe-based active catalytic centers. Co-doping of graphene with heteroatoms has a synergistic effect on the catalytic properties of the nanomaterial as the distances of migration of the substrates drastically reduce. However, a few studies have reported the codoping of heterometallic elements in the graphene structure due to the complexity of the synthesis procedures. Herein, we report the synthesis of in situ doped bimetallic VNFe@C mesoporous graphitic spheroids nanozyme via pyrolysis without the assistance of any template assisted method. The Prussian-blue analog-based precursor material was synthesized by a facile one-step low-temperature synthesis procedure. The bimetallic spheroids showed an excellent affinity toward HO, with a value of 0.26 mM when compared to 0.436 for the natural POD, which is much better than the natural POD, which was utilized to detect tumor cells in vitro through the intracellular HO produced by these cells under high oxidative stress. The VNFe@C mesoporous spheroids generate dual reactive oxygen species, including the OH and OH radicals, in the presence of HO, which are responsible for the POD-like activity of these nanozymes, while the bimetallic V/Fe doping plays a synergistic role in the enhancement of the activity of codoped graphitic spheroids.
受两种天然过氧化物酶(POD)的启发,它们具有基于钒或血红素(铁)的活性催化中心,我们开发了一种具有双 V 和 Fe 基活性催化中心的双金属纳米酶。杂原子共掺杂石墨烯对纳米材料的催化性能具有协同作用,因为底物的迁移距离大大缩短。然而,由于合成过程复杂,很少有研究报道石墨烯结构中杂金属元素的共掺杂。在此,我们通过无模板辅助的热解方法报告了通过原位掺杂双金属 VNFe@C 介孔石墨质球型纳米酶的合成。基于普鲁士蓝类似物的前体材料通过简便的一步低温合成程序合成。双金属球表现出对 HO 的优异亲和力,与天然 POD 的 0.436 相比, 值为 0.26mM,这比天然 POD 要好得多,天然 POD 被用于通过这些细胞在高氧化应激下产生的细胞内 HO 来体外检测肿瘤细胞。VNFe@C 介孔球在 HO 的存在下产生两种活性氧,包括 OH 和 OH 自由基,这是这些纳米酶具有 POD 样活性的原因,而双金属 V/Fe 掺杂在增强共掺杂石墨质球的活性方面发挥协同作用。
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