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调控基于钒的人工酶中的电子转移以增强 ROS 催化和消毒作用。

Modulating Electron Transfer in Vanadium-Based Artificial Enzymes for Enhanced ROS-Catalysis and Disinfection.

机构信息

Department of Ultrasound, College of Polymer Science and Engineering, National Clinical Research Center for Geriatrics, Med-X Center for Materials, West China Hospital, Sichuan University, Chengdu, 610041, China.

Department of Ultrasound, Affiliated Hospital of North Sichuan Medical College, Nanchong, 637000, China.

出版信息

Adv Mater. 2022 Apr;34(17):e2108646. doi: 10.1002/adma.202108646. Epub 2022 Mar 20.

Abstract

Nanomaterials-based artificial enzymes (AEs) have flourished for more than a decade. However, it is still challenging to further enhance their biocatalytic performances due to the limited strategies to tune the electronic structures of active centers. Here, a new path is reported for the de novo design of the d electrons of active centers by modulating the electron transfer in vanadium-based AEs (VO -AE) via a unique Zn-O-V bridge for efficient reactive oxygen species (ROS)-catalysis. Benefiting from the electron transfer from Zn to V, the V site in VO -AE exhibits a lower valence state than that in V O , which results in charge-filled V-d orbital near the Fermi level to interfere with the formation of sigma bonds between the V- and O-p orbitals in H O . The VO -AE exhibits a twofold V and threefold turnover number than V O when catalyzing H O . Meanwhile, the VO -AE shows enhanced catalytic eradication of drug-resistant bacteria and achieves comparable wound-treatment indexes to vancomycin. This modulating charge-filling of d electrons provides a new direction for the de novo design of nanomaterials-based AEs and deepens the understanding of ROS-catalysis.

摘要

基于纳米材料的人工酶(AEs)已经发展了十余年。然而,由于调节活性中心电子结构的策略有限,进一步提高它们的生物催化性能仍然具有挑战性。在这里,通过独特的 Zn-O-V 桥在钒基 AEs(VO-AE)中调节电子转移,为活性中心的 d 电子的从头设计报告了一条新途径,从而实现高效的活性氧(ROS)催化。受益于从 Zn 到 V 的电子转移,VO-AE 中的 V 位的价态低于 V O 中的价态,这导致费米能级附近充满电荷的 V-d 轨道干扰 V- 和 O-p 轨道之间形成 sigma 键在 H O 中。在催化 H O 时,VO-AE 的 V 和周转数分别是 V O 的两倍和三倍。同时,VO-AE 显示出增强的抗药性细菌的催化消除作用,并达到与万古霉素相当的伤口处理指标。这种调节 d 电子的电荷填充为基于纳米材料的 AEs 的从头设计提供了新的方向,并加深了对 ROS 催化的理解。

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