Nanozymes for biomedical applications: Multi-metallic systems may improve activity but at the cost of higher toxicity?

Thuong Phan-Xuan, Ben Breitung, Lea Ann Dailey
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Abstract

Nanozymes are nanomaterials with intrinsic enzyme-like activity with selected advantages over native enzymes such as simple synthesis, controllable activity, high stability, and low cost. These materials have been explored as surrogates to natural enzymes in biosensing, therapeutics, environmental protection, and many other fields. Among different nanozymes classes, metal- and metal oxide-based nanozymes are the most widely studied. In recent years, bi- and tri-metallic nanomaterials have emerged often showing improved nanozyme activity, some of which even possess multifunctional enzyme-like activity. Taking this concept even further, high-entropy nanomaterials, that is, complex multicomponent alloys and ceramics like oxides, may potentially enhance activity even further. However, the addition of various elements to increase catalytic activity may come at the cost of increased toxicity. Since many nanozyme compositions are currently being explored for in vivo biomedical applications, such as cancer therapeutics, toxicity considerations in relation to nanozyme application in biomedicine are of vital importance for translation. This article is categorized under: Therapeutic Approaches and Drug Discovery > Emerging Technologies Toxicology and Regulatory Issues in Nanomedicine > Toxicology of Nanomaterials Diagnostic Tools > Diagnostic Nanodevices.

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用于生物医学的纳米酶:多金属系统可提高活性,但代价是毒性更高?
纳米酶是一种具有类似酶的内在活性的纳米材料,与本地酶相比具有合成简单、活性可控、稳定性高和成本低等优点。在生物传感、治疗、环境保护和许多其他领域,这些材料已被探索用作天然酶的替代物。在各类纳米酶中,金属和金属氧化物基纳米酶的研究最为广泛。近年来,出现的双金属和三金属纳米材料往往显示出更高的纳米酶活性,其中一些甚至具有类似酶的多功能活性。从这一概念出发,高熵纳米材料,即复杂的多组分合金和陶瓷(如氧化物),有可能进一步提高活性。然而,添加各种元素以提高催化活性可能会以增加毒性为代价。由于目前正在探索将许多纳米酶组合物用于体内生物医学应用,如癌症治疗,因此纳米酶在生物医学应用中的毒性考虑对于转化至关重要。本文归类于治疗方法和药物发现 > 新兴技术 纳米医学中的毒理学和监管问题 > 纳米材料毒理学 诊断工具 > 纳米诊断设备。
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CiteScore
17.60
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