Key Laboratory for Biomedical Effects of Nanomaterials and Nanosafety, Key Laboratory of Nuclear Radiation and Nuclear Energy Technology, Institute of High Energy Physics, Chinese Academy of Sciences, Beijing 100049 (China).
Angew Chem Int Ed Engl. 2015 Feb 2;54(6):1832-5. doi: 10.1002/anie.201410398. Epub 2014 Dec 16.
Ceria nanoparticles (nanoceria) are well known as a superoxide scavenger. However, inherent superoxide-scavenging ability has only been found in the nanoceria with sizes of less than 5 nm and with very limited shape diversity. Reported herein is a strategy to significantly improve the superoxide-scavenging activity of nanoceria sized at greater than 5 nm. The nanoceria with sizes of greater than 5 nm, with different shapes, and with a negligible Ce(3+)/Ce(4+) ratio can acquire remarkable superoxide-scavenging abilities through electron transfer. This method will make it possible to develop nanoceria-based superoxide-scavengers with long-acting activity and tailorable characteristics.
氧化铈纳米颗粒(纳米氧化铈)作为一种超氧化物清除剂广为人知。然而,只有粒径小于 5nm 且形状多样性非常有限的纳米氧化铈才具有内在的超氧化物清除能力。本文报道了一种显著提高粒径大于 5nm 的纳米氧化铈的超氧化物清除活性的策略。通过电子转移,粒径大于 5nm、形状不同且 Ce(3+)/Ce(4+)比值可忽略不计的纳米氧化铈可以获得显著的超氧化物清除能力。这种方法将有可能开发出具有长效活性和可定制特性的基于纳米氧化铈的超氧化物清除剂。