肿瘤微环境驱动的钒基mx酶结构转化放大氧化应激,用于多模式肿瘤治疗。

IF 14.1 1区 材料科学 Q1 CHEMISTRY, MULTIDISCIPLINARY Advanced Science Pub Date : 2025-01-23 DOI:10.1002/advs.202408998
Hai Zhu, Tinghua Li, Xinhao Peng, Xiaoxian Zhang, Xuequan Zhang, Qiusheng Wang, Lei Lei, Jun Zhang, Bin He, Jun Cao
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引用次数: 0

摘要

mx酶是一类很有前途的催化治疗材料,在肿瘤治疗中具有很大的潜力,但由于肿瘤微环境(TME)的催化效率和动力学不理想,它们遇到了很大的障碍。因此,本研究从过渡金属钒的电子结构中获得灵感,提出利用TME特异性特征诱导片状碳化钒mx酶(TVMz)的结构转变。这些转化触发级联催化反应,放大氧化应激,从而显著增强多模式肿瘤治疗。具体而言,涂覆透明质酸的HTVMz在NIR-II激光照射下表现出良好的稳定性,并产生热效应。热效应与TME特性相结合,促进了结构转化为超小型氧化钒纳米酶(VOx)。VOx表面积的增大大大增强了ROS的再生和氧化应激,从而促进溶酶体的通透性,诱导内质网应激。VOx中的高价钒与细胞内谷胱甘肽相互作用,破坏氧化还原稳态,进一步加剧氧化应激。这些扩增加速肿瘤凋亡,诱导铁下垂,抑制HSP90的表达。因此,HTVMz的高热敏性通过多模式治疗途径协同促进肿瘤细胞死亡。本研究提出了一种通过调控mx酶结构进行肿瘤催化治疗的创新策略,推动了催化治疗领域的发展。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Tumor Microenvironment-Driven Structural Transformation of Vanadium-Based MXenzymes to Amplify Oxidative Stress for Multimodal Tumor Therapy

MXenzymes, a promising class of catalytic therapeutic material, offer great potential for tumor treatment, but they encounter significant obstacles due to suboptimal catalytic efficiency and kinetics in the tumor microenvironment (TME). Herein, this study draws inspiration from the electronic structure of transition metal vanadium, proposing the leverage of TME specific-features to induce structural transformations in sheet-like vanadium carbide MXenzymes (TVMz). These transformations trigger cascading catalytic reactions that amplify oxidative stress, thereby significantly enhancing multimodal tumor therapy. Specifically, the engineered HTVMz, coated with hyaluronic acid, exhibits good stability and generates a thermal effect under NIR-II laser irradiation. The thermal effect, combined with TME characteristics, facilities a structural transformation into ultra-small vanadium oxide nanozymes (VOx). The enlarged surface area of VOx substantially enhances ROS regeneration and amplifies oxidative stress, which promotes lysosomal permeability and induces endoplasmic reticulum stress. The high-valent vanadium in VOx interacts with intracellular glutathione, disrupting redox homeostasis and intensifying oxidative stress further. These amplifications accelerate tumor apoptosis, induce ferroptosis, and suppress HSP90 expression. Consequently, the heightened thermal sensitivity of HTVMz synergistically promotes tumor cell death via multimodal therapeutic pathways. This study presents an innovative strategy for tumor catalytic therapy by manipulating MXenzymes structures, advancing the field of catalytic therapy.

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来源期刊
Advanced Science
Advanced Science CHEMISTRY, MULTIDISCIPLINARYNANOSCIENCE &-NANOSCIENCE & NANOTECHNOLOGY
CiteScore
18.90
自引率
2.60%
发文量
1602
审稿时长
1.9 months
期刊介绍: Advanced Science is a prestigious open access journal that focuses on interdisciplinary research in materials science, physics, chemistry, medical and life sciences, and engineering. The journal aims to promote cutting-edge research by employing a rigorous and impartial review process. It is committed to presenting research articles with the highest quality production standards, ensuring maximum accessibility of top scientific findings. With its vibrant and innovative publication platform, Advanced Science seeks to revolutionize the dissemination and organization of scientific knowledge.
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