School of Life Sciences, Northwestern Polytechnical University, 127 Youyi Road, 710072, Xi'an, P. R. China.
CAS Engineering Laboratory for Nanozyme, Institute of Biophysics Chinese Academy of Sciences, 15 Datun Road, 100101, Beijing, P. R. China.
Adv Mater. 2024 Mar;36(10):e2206421. doi: 10.1002/adma.202206421. Epub 2022 Nov 14.
The development of cold-adapted enzymes with high efficiency and good stability is an advanced strategy to overcome the limitations of catalytic medicine in low and cryogenic temperatures. In this work, inspired by natural enzymes, a novel cold-adapted nanozyme based on a manganese-based nanosized metal-organic framework (nMnBTC) is designed and synthesized. The nMnBTC as an oxidase mimetic not only exhibits excellent activity at 0 °C, but also presents almost no observable activity loss as the temperature is increased to 45 °C. This breaks the traditional recognition that enzymes show maximum activity only under specific psychrophilic or thermophilic condition. The superior performance of nMnBTC as a cold-adapted nanozyme can be attributed to its high-catalytic efficiency at low temperature, good substrate affinity, and flexible conformation. Based on the robust performance of nMnBTC, a low-temperature antiviral strategy is developed to inactivate influenza virus H1N1 even at -20 °C. These results not only provide an important guide for the rational design of highly efficient artificial cold-adapted enzymes, but also pave a novel way for biomedical application in cryogenic fields.
开发高效且稳定性好的耐冷酶是克服催化医学在低温和极低温下局限性的一种先进策略。在这项工作中,受天然酶的启发,设计并合成了一种基于锰基纳米尺寸金属有机骨架(nMnBTC)的新型耐冷纳米酶。作为氧化酶模拟物,nMnBTC 不仅在 0°C 时表现出优异的活性,而且当温度升高到 45°C 时几乎没有观察到活性损失。这打破了传统的认识,即酶只有在特定的嗜冷或嗜热条件下才表现出最大的活性。nMnBTC 作为耐冷纳米酶的卓越性能可归因于其在低温下的高催化效率、良好的底物亲和力和灵活的构象。基于 nMnBTC 的稳健性能,开发了一种低温抗病毒策略,即使在-20°C 下也能使流感病毒 H1N1 失活。这些结果不仅为高效人工耐冷酶的合理设计提供了重要指导,而且为低温领域的生物医学应用开辟了新途径。