Hao Liang, Xinyu Chen, Zhijian Bu, Qinqin Bai, Jinjin Liu, Qingzhen Tian, Zheng Tang, Shu Li, Qiaoqiao Diao, Xiangheng Niu
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引用次数: 0
Abstract
As emerging alternatives to natural enzymes, nanoscale materials featuring enzyme-like catalytic behaviors (nanozymes) exhibit some attractive merits including robust activity, low cost, and easy-to-regulate performance. These merits have enabled them to be intensively used in the biomedical field in recent years. To remedy the lack of catalytic selectivity in most nanozymes, deoxyribonucleic acid (DNA) chains with specific recognition functions are utilized to integrate with nanozymes to produce various nanozyme–DNA combinations via adsorption/desorption. In the formed combinations, the DNA component provides the molecular/ionic recognition role, and the nanozyme part offers response with catalytically amplified signals, enabling them to detect analytes and biomarkers selectively and sensitively. To highlight this interesting topic, here we made a critical review of the interactions between nanozymes and DNA and their applications in biosensing and disease diagnosis. First, strategies for the conjugation of DNA chains onto nanozyme surface were introduced briefly. Then, the interactions between DNA and nanozymes were summarized in detail, where flexible modulations of nanozyme activity by DNA adsorption/desorption as well as various factors were analyzed, and potential impacts caused by nanozymes on the recognition characteristics of DNA chains were pointed out. After that, typical applications of DNA-mediated nanozyme modulation in toxic ion sensing, health risk factor monitoring, and biomedical diagnosis were introduced. In the end, prospects of the combination of nanozymes and DNA chains were presented, and future challenges of the emerging field were also discussed, to attract more interest and effort to advance this promising area.
作为天然酶的新兴替代品,具有类似酶催化行为的纳米级材料(纳米酶)表现出一些诱人的优点,包括活性强、成本低和性能易于调节。这些优点使它们近年来在生物医学领域得到了广泛应用。为了弥补大多数纳米酶催化选择性的不足,具有特定识别功能的脱氧核糖核酸(DNA)链被用来与纳米酶结合,通过吸附/解吸产生各种纳米酶-DNA 组合。在形成的组合中,DNA 部分提供分子/离子识别作用,纳米酶部分提供催化放大信号的响应,使它们能够选择性地、灵敏地检测分析物和生物标记物。为了突出这一有趣的话题,我们在此对纳米酶与 DNA 之间的相互作用及其在生物传感和疾病诊断中的应用进行了深入探讨。首先,简要介绍了将 DNA 链连接到纳米酶表面的策略。然后,详细总结了DNA与纳米酶之间的相互作用,分析了DNA吸附/解吸以及各种因素对纳米酶活性的灵活调节,并指出了纳米酶对DNA链识别特性的潜在影响。随后,介绍了 DNA 介导的纳米酶调制在有毒离子传感、健康风险因子监测和生物医学诊断中的典型应用。最后,介绍了纳米酶与 DNA 链结合的前景,并讨论了这一新兴领域未来面临的挑战,以吸引人们对这一前景广阔的领域的更多兴趣和努力。