Nanomaterials and Toxicology Laboratory, Division of Biological and Life Sciences, School of Arts and Sciences, Ahmedabad University, Ahmedabad, 380009, India.
Global Innovative Center for Advanced Nanomaterials, The School of Engineering, College of Engineering, Science and Environment, The University of Newcastle, Callaghan, 2308, Australia.
Biomater Sci. 2022 Jun 14;10(12):3245-3258. doi: 10.1039/d2bm00396a.
Cerium oxide nanoparticles (CeNPs) exhibit excellent and antioxidant properties, determined by the redox switching of surface cerium ions between their two oxidation states (Ce and Ce). It is known that ligands such as triethyl phosphite (TEP) can tune the redox behavior of CeNPs and change their biological enzyme-mimetic activities; however, the corresponding mechanism for such a behavior is completely unknown. Herein, we have studied the effect of TEP in promoting the SOD-enzyme-like activity in CeNPs with high and low Ce/Ce ratio, which were synthesized by wet chemical and thermal hydrolysis methods, respectively, and incubated with varying concentrations of TEP. X-ray diffraction, UV-visible, photoluminescence, X-ray photoelectron spectroscopy, and Raman spectroscopy combined with DFT calculations were used to investigate the interaction of TEP on the surface of CeNPs. We observed a clear correlation between TEP concentration and the formation of surface oxygen vacancies. XPS analysis confirmed the increase in Ce concentration after interaction with TEP. Moreover, we show that TEP's influence depends on the surface Ce/Ce ratio. The superoxide dismutase-, catalase-, and oxidase-like activities of CeNPs with high Ce/Ce ratio are not affected by TEP interaction, whereas catalase- and oxidase-like activities of CeNPs with low Ce/Ce ratio decrease and the SOD-like activity is found to increase upon incubation with different concentrations of TEP. We also demonstrate that TEP interaction does not affect the regeneration of the CeNP surface, while the DFT calculations show that TEP facilitates the formation of defects on the surface of stoichiometric cerium oxide by reducing the oxygen vacancy formation energy. CeNPs with low Ce/Ce ratio incubated with TEP also exhibited good antibacterial activity as compared to the CeNPs or TEP alone.
氧化铈纳米粒子(CeNPs)表现出优异的抗氧化性能,这取决于表面铈离子在两种氧化态(Ce 和 Ce)之间的氧化还原开关。已知三乙基膦(TEP)等配体可以调节 CeNPs 的氧化还原行为并改变其生物酶模拟活性;然而,对于这种行为的相应机制尚完全未知。在此,我们研究了 TEP 对通过湿化学和热水解法分别合成的具有高和低 Ce/Ce 比 CeNPs 的 SOD 酶样活性的促进作用,并用不同浓度的 TEP 孵育。X 射线衍射、紫外-可见、光致发光、X 射线光电子能谱和拉曼光谱结合密度泛函理论计算用于研究 TEP 对 CeNPs 表面的相互作用。我们观察到 TEP 浓度与表面氧空位形成之间存在明显的相关性。XPS 分析证实了与 TEP 相互作用后 Ce 浓度的增加。此外,我们表明 TEP 的影响取决于表面 Ce/Ce 比。高 Ce/Ce 比的 CeNPs 的超氧化物歧化酶、过氧化氢酶和氧化酶样活性不受 TEP 相互作用的影响,而低 Ce/Ce 比的 CeNPs 的过氧化氢酶和氧化酶样活性降低,并且发现 SOD 样活性在与不同浓度的 TEP 孵育时增加。我们还证明 TEP 相互作用不会影响 CeNP 表面的再生,而 DFT 计算表明 TEP 通过降低氧空位形成能来促进化学计量氧化铈表面缺陷的形成。与单独的 CeNPs 或 TEP 相比,用 TEP 孵育的低 Ce/Ce 比的 CeNPs 也表现出良好的抗菌活性。