用于增强癌症催化治疗的多金属基纳米酶的最新进展

BMEMat Pub Date : 2023-09-19 DOI:10.1002/bmm2.12043
Mingjin Cui, Bo Xu, Lianhui Wang
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引用次数: 0

摘要

纳米酶作为天然酶的替代品,有效解决了天然酶的固有局限性,前景广阔。纳米酶的多功能性和潜在应用横跨各个领域,其中催化肿瘤治疗是一个突出的领域。这引发了人们对利用纳米酶进行癌症靶向治疗的极大兴趣和探索。近年来,随着跨学科研究、纳米技术、生物技术和催化技术的发展,以多金属为基础的纳米酶应运而生,并展现出进一步发展的巨大潜力。本综述侧重于研究多金属基纳米酶的协同效应,旨在加深我们对其催化活性的理解,促进其更广泛的应用。我们全面考察了多金属基纳米酶在合成、催化机制方面取得的显著成就,以及在癌症催化治疗中的最新应用。此外,我们还指出了多金属基纳米酶目前在新材料开发和新技术应用方面的局限性和前景,以及与癌症催化治疗相关的潜在挑战。这篇综述强调了多金属基纳米酶的重要意义,强调了继续探索的必要性及其对开发新型材料和实现肿瘤催化治疗突破的潜在影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Recent advances in multi-metallic-based nanozymes for enhanced catalytic cancer therapy

Recent advances in multi-metallic-based nanozymes for enhanced catalytic cancer therapy

Nanozymes have emerged as a promising alternative to natural enzymes, effectively addressing natural enzymes' inherent limitation. Versatility and potential applications of nanozyme span across various fields, with catalytic tumor therapy being one prominent area. This has sparked significant interest and exploration in the utilization of nanozymes for targeted cancer treatment. Recent advancements in interdisciplinary research, nanotechnology, biotechnology, and catalytic technology have led to the emergence of multi-metallic-based nanozymes, which exhibit tremendous potential for further development. This review focuses on investigating the synergistic effects of multi-metallic-based nanozymes, aiming to enhance our understanding of their catalytic activities and facilitate their broader applications. We comprehensively survey the remarkable achievements in the synthesis, catalytic mechanisms, and the latest applications of multi-metallic-based nanozymes in cancer catalytic therapy. Furthermore, we identify the current limitations and prospects of multi-metallic-based nanozymes in the development of new materials and the application of novel technologies, along with the potential challenges associated with catalytic cancer therapy. This review underscores the significance of multi-metallic-based nanozymes and emphasizes the need for continued exploration as well as their potential impact on the development of novel materials and the realization of breakthroughs in catalytic tumor therapy.

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