Gupta Ankur, Das Soumen, Neal Craig J, Seal Sudipta
Advanced Materials Processing and Analysis Center, NanoScience Technology Center and Department of Materials Science and Engineering, University of Central Florida, Orlando, FL-32816, USA.
J Mater Chem B. 2016 May 21;4(19):3195-3202. doi: 10.1039/c6tb00396f. Epub 2016 Mar 31.
The catalytic activity of cerium oxide nanoparticles (CNPs) depends on the surface Ce/Ce oxidation state. CNPs with a higher Ce to Ce ratio, oxygen vacancies and higher superoxide dismutase (SOD) mimetic activity are more effective against diseases associated with oxidative stress or inflammation. CNPs with a lower Ce/Ce ratio show higher catalase mimetic activity and possess anticancer/antibacterial activity. However, different synthesis methods of CNPs and capping agents/surface coatings result in various Ce/Ce oxidation states, thus limiting the use of particular CNPs for specific biological applications. In this study, we have shown that by selecting an appropriate doping method we can control the surface Ce/Ce oxidation state to tune the catalytic activity and biological response. Importantly, superior SOD mimetic activity and efficient reactive oxygen species scavenging capability of one-step synthesized CNPs are linked to a uniform distribution of dopants in the CNP lattice and changes in the surface Ce/Ce oxidation state.
氧化铈纳米颗粒(CNPs)的催化活性取决于表面Ce/Ce的氧化态。具有较高Ce/Ce比、氧空位和较高超氧化物歧化酶(SOD)模拟活性的CNPs对与氧化应激或炎症相关的疾病更有效。具有较低Ce/Ce比的CNPs表现出较高的过氧化氢酶模拟活性,并具有抗癌/抗菌活性。然而,CNPs的不同合成方法以及封端剂/表面涂层会导致各种Ce/Ce氧化态,从而限制了特定CNPs在特定生物应用中的使用。在本研究中,我们表明通过选择合适的掺杂方法,可以控制表面Ce/Ce氧化态以调节催化活性和生物反应。重要的是,一步合成的CNPs具有优异的SOD模拟活性和高效的活性氧清除能力,这与掺杂剂在CNP晶格中的均匀分布以及表面Ce/Ce氧化态的变化有关。