Coordination Engineering in Fe-Mn Dual-Atom Nanozyme: Yielding ROS Storm to Efficiently Promote Wound Healing

IF 19 1区 材料科学 Q1 CHEMISTRY, MULTIDISCIPLINARY
Chenyue Jiang, Mingming Sun, Yueshuai Wang, Chenxin Dong, Yan Yu, Guo Wang, Yue Lu, Zhengbo Chen
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Abstract

Multidrug-resistant bacterial infections have become a global public health issue. To solve this dilemma, single-atom nanozymes have been used as versatile antibiotics. However, the efficacy of individual nanozyme is hindered by their limited catalytic activity and antibacterial effect. Herein, a novel N3-Fe1-Mn1-N2S nanozyme (Fe/Mn-SNC), with neighboring Mn and Fe dual single-atom pairs decorated on yolk-shell-like carbon skeleton, is constructed through partial modulation of Fe-Mn dual site coordination by sulfur atoms. The developed Fe/Mn-SNC possesses superior multienzyme-like cascade activities (oxidase-, superoxide-, and peroxidase-like activities). It catalyzes the conversion of O2 into O2·− through its oxidase-like activity, which is then decomposed into H2O2 by its superoxide-like enzyme properties. Ultimately, ·OH is generated under the influence of peroxidase-like activity. This process effectively kills bacteria without the addition of H2O2, contributing to the overcoming of bacterial resistance issues. Density functional theory calculations indicate that the direct coordinated S atom enhances the oxidase-like activity. The Fe-Mn dual-atomic site provides an additional active site for the enhancement of the superoxidase- and peroxidase-like activities. The Fe/Mn-SNC, with high antibacterial effect and biosafety, showing its wide potential applications in medical technology and consumer care. This work opens a new avenue for designing multifunctional single-atom nanozymes for antibacterial applications.

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铁锰双原子纳米酶的配位工程:产生ROS风暴有效促进伤口愈合
耐多药细菌感染已成为一个全球性的公共卫生问题。为了解决这个难题,单原子纳米酶被用作多功能抗生素。然而,单个纳米酶的催化活性和抗菌作用有限,阻碍了其效果的发挥。本文通过硫原子对Fe-Mn双位配位的部分调制,构建了一种新的N3-Fe1-Mn1-N2S纳米酶(Fe/Mn- snc),其相邻的Mn和Fe双单原子对修饰在蛋黄壳状碳骨架上。开发的Fe/Mn-SNC具有优异的多酶样级联活性(氧化酶,超氧化物和过氧化物酶样活性)。它通过其类似氧化酶的活性催化O2转化为O2·−,然后通过其类似超氧化物的酶的性质分解为H2O2。最终,·OH在过氧化物酶样活性的影响下生成。该过程无需添加H2O2即可有效杀死细菌,有助于克服细菌耐药性问题。密度泛函理论计算表明,直接配位S原子增强了类氧化酶活性。铁锰双原子位点为增强超氧化酶和过氧化物酶样活性提供了额外的活性位点。Fe/Mn-SNC具有较高的抗菌效果和生物安全性,在医疗技术和消费者护理方面具有广泛的应用前景。这项工作为设计多功能单原子纳米酶用于抗菌应用开辟了新的途径。
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来源期刊
Advanced Functional Materials
Advanced Functional Materials 工程技术-材料科学:综合
CiteScore
29.50
自引率
4.20%
发文量
2086
审稿时长
2.1 months
期刊介绍: Firmly established as a top-tier materials science journal, Advanced Functional Materials reports breakthrough research in all aspects of materials science, including nanotechnology, chemistry, physics, and biology every week. Advanced Functional Materials is known for its rapid and fair peer review, quality content, and high impact, making it the first choice of the international materials science community.
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