用工程纳米酶治疗癌症:从分子设计到肿瘤反应性催化。

Austine Ofondu Chinomso Iroegbu, Moipone Linda Teffo, Emmanuel Rotimi Sadiku
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引用次数: 0

摘要

纳米酶是一种模拟天然酶活性的工程纳米材料,由于其产生活性氧(ROS)、调节肿瘤微环境(TME)和促进级联催化反应的能力,已经成为精确癌症治疗的有力工具。本文综述了纳米酶结构工程在提高催化性能、底物特异性和生物相容性方面的最新创新。关键的设计策略,包括尺寸裁剪,价态调整和表面功能化,在肿瘤靶向治疗的背景下进行了讨论。特别关注的是适应TME条件或外部触发因素(如光和ph)的多功能和刺激响应纳米酶。尽管取得了重大进展,但生物安全性、递送效率和缺乏标准化催化性能指标等障碍仍然存在。这篇综述批判性地解决了这些挑战,并强调了最先进的纳米酶平台,如单原子催化剂和级联系统,它们正在引领该领域走向临床转化。最后,它提出了弥合当前知识差距的战略方向,并将纳米酶从实验室推进到临床,将其定位为个性化肿瘤学的下一代催化平台。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Cancer therapy with engineered nanozymes: from molecular design to tumour-responsive catalysis.

Nanozymes, engineered nanomaterials that mimic natural enzyme activity, have emerged as powerful tools in precision cancer therapy due to their ability to generate reactive oxygen species (ROS), modulate the tumor microenvironment (TME), and facilitate cascade catalytic reactions. This review presents a comprehensive evaluation of recent innovations in nanozyme structural engineering aimed at improving catalytic performance, substrate specificity, and biocompatibility. Key design strategies, including dimensional tailoring, valence state tuning, and surface functionalisation, are discussed in the context of tumor-targeted therapies. Special focus is given to multifunctional and stimuli-responsive nanozymes that adapt to TME conditions or external triggers like light and pH. Despite significant progress, barriers such as biosafety, delivery efficiency, and lack of standardized catalytic performance metrics remain. This review critically addresses these challenges and highlights state-of-the-art nanozyme platforms, such as single-atom catalysts and cascade systems, which are leading the field toward clinical translation. Finally, it proposes strategic directions to bridge current knowledge gaps and advance nanozymes from bench to bedside, positioning them as next-generation catalytic platforms for personalized oncology.

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