Vernekar Amit A, Das Tandrila, Ghosh Sourav, Mugesh Govindasamy
Department of Inorganic and Physical Chemistry, Indian Institute of Science, Bangalore, 560012, India.
Chem Asian J. 2016 Jan;11(1):72-6. doi: 10.1002/asia.201500942. Epub 2015 Oct 8.
Nanomaterials-based enzyme mimetics (nanozymes) have attracted considerable interest due to their applications in imaging, diagnostics, and therapeutic treatments. Particularly, metal-oxide nanozymes have been shown to mimic the interesting redox properties and biological activities of metalloenzymes. Here we describe an efficient synthesis of MnFe2 O4 nanomaterials and show how the morphology can be controlled by using a simple co-precipitation method. The nanomaterials prepared by this method exhibit a remarkable oxidase-like activity. Interestingly, the activity is morphology-dependent, with nanooctahedra (NOh) exhibiting a catalytic efficiency of 2.21×10(9) m(-1) s(-1) , the highest activity ever reported for a nanozyme.
基于纳米材料的酶模拟物(纳米酶)因其在成像、诊断和治疗方面的应用而备受关注。特别是,金属氧化物纳米酶已被证明能够模拟金属酶有趣的氧化还原特性和生物活性。在此,我们描述了一种高效合成MnFe2O4纳米材料的方法,并展示了如何通过简单的共沉淀法来控制其形态。通过这种方法制备的纳米材料表现出显著的类氧化酶活性。有趣的是,该活性与形态有关,纳米八面体(NOh)的催化效率为2.21×10(9) m(-1) s(-1) ,这是有史以来报道的纳米酶的最高活性。
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