Engineering Colloidal Nanozymes for Cancer Diagnosis and Therapy: From Surface Chemistry to Catalytic Mechanisms and Precision Medicine.

IF 4.6 Q2 MATERIALS SCIENCE, BIOMATERIALS
Mohammed Ali Dheyab, Azlan Abdul Aziz, Wesam Abdullah, Saleh T Alanezi, Wasan Hussein Kasasbeh, Firas Fohely, Pegah Moradi Khaniabadi, Mahmood S Jameel, Nazila Oladzadabbasabadi, Mehran Ghasemlou
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引用次数: 0

Abstract

Colloidal nanozymes, enzyme-mimetic nanocatalysts with tunable catalytic activity, are revolutionizing cancer diagnosis and therapy by integrating catalytic precision with biomedical functionality. Their ability to regulate redox homeostasis, generate reactive oxygen species (ROS), and modulate tumor microenvironments provides a foundation for targeted therapeutic interventions, while their intrinsic catalytic properties enhance biosensing and imaging for early cancer detection. However, the rational design of nanozymes remains a challenge, particularly in optimizing their catalytic efficiency, biocompatibility, and specificity for tumor-selective reactions. This review explores how surface chemistry, interfacial engineering, and catalytic mechanisms dictate nanozyme activity, stability, and interactions with biological systems. We critically analyze the fundamental catalytic mechanisms peroxidase-like, oxidase-like, catalase-like, and superoxide dismutase (SOD)-like reactions driving nanozyme applications in cancer therapy, as well as their role in biosensors, imaging probes, and theranostic platforms for early cancer diagnosis. Additionally, we examine cutting-edge surface modification strategies, including atomic dispersion, ligand coordination, and defect engineering, to enhance nanozyme selectivity and reduce off-target effects. By integrating fundamental catalysis with translational biomedical applications, this review establishes a comprehensive framework for advancing nanozyme-based diagnostics and therapeutics in precision oncology.

用于癌症诊断和治疗的工程胶体纳米酶:从表面化学到催化机制和精准医学。
胶体纳米酶,具有可调催化活性的模拟酶纳米催化剂,通过将催化精度与生物医学功能相结合,正在彻底改变癌症的诊断和治疗。它们调节氧化还原稳态、产生活性氧(ROS)和调节肿瘤微环境的能力为靶向治疗干预提供了基础,而它们固有的催化特性增强了早期癌症检测的生物传感和成像。然而,纳米酶的合理设计仍然是一个挑战,特别是在优化其催化效率、生物相容性和肿瘤选择性反应的特异性方面。这篇综述探讨了表面化学、界面工程和催化机制如何决定纳米酶的活性、稳定性以及与生物系统的相互作用。我们批判性地分析了驱动纳米酶在癌症治疗中应用的过氧化物酶样、氧化酶样、过氧化氢酶样和超氧化物歧化酶(SOD)样反应的基本催化机制,以及它们在生物传感器、成像探针和早期癌症诊断治疗平台中的作用。此外,我们研究了尖端的表面修饰策略,包括原子分散,配体配位和缺陷工程,以提高纳米酶的选择性和减少脱靶效应。通过将基础催化与转化生物医学应用相结合,本综述建立了一个全面的框架,以推进基于纳米酶的精确肿瘤学诊断和治疗。
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来源期刊
ACS Applied Bio Materials
ACS Applied Bio Materials Chemistry-Chemistry (all)
CiteScore
9.40
自引率
2.10%
发文量
464
期刊介绍: ACS Applied Bio Materials is an interdisciplinary journal publishing original research covering all aspects of biomaterials and biointerfaces including and beyond the traditional biosensing, biomedical and therapeutic applications. The journal is devoted to reports of new and original experimental and theoretical research of an applied nature that integrates knowledge in the areas of materials, engineering, physics, bioscience, and chemistry into important bio applications. The journal is specifically interested in work that addresses the relationship between structure and function and assesses the stability and degradation of materials under relevant environmental and biological conditions.
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