Umezawa Masakazu, Itano Ryodai, Sakaguchi Naoya, Kawasaki Takayasu
Department of Medical and Robotic Engineering Design, Faculty of Advanced Engineering, Tokyo University of Science, Tokyo, Japan.
Department of Materials Science and Technology, Graduate School of Advanced Engineering, Tokyo University of Science, Tokyo, Japan.
Front Toxicol. 2023 Sep 25;5:1237819. doi: 10.3389/ftox.2023.1237819. eCollection 2023.
Cerium oxide (CeO) nanoparticles are expected to have applications in the biomedical field because of their antioxidative properties. Inorganic nanoparticles interact with proteins at the nanoparticle surface and change their conformation when administered; however, the principle underlying this interaction is still unclear. This study aimed to investigate the secondary structural changes occurring in bovine serum albumin (BSA) mixed with CeO nanoparticles having different surface modifications using Fourier transform infrared spectroscopy. CeO nanoparticles (diameter: 240 nm) were synthesized from an aqueous cerium (III) nitrate solution using a homogeneous precipitation method. The surfaces of the nanoparticles were modified by the catechol compounds dopamine and 3,4-dihydroxyhydrocinnamic acid (DHCA). In the presence of these CeO nanoparticles (0.11-0.43 mg/mL), β-sheet formation of BSA (30 mg/mL) was promoted especially on the amine-modified (positively charged) nanoparticles. The local concentration of BSA on the surface of the positively charged nanoparticles may have resulted in structural changes due to electrostatic and other interactions with BSA. Further investigations of the interaction mechanism between nanoparticles and proteins are expected to lead to the safe biomedical applications of inorganic nanoparticles.
由于其抗氧化特性,氧化铈(CeO)纳米颗粒有望在生物医学领域得到应用。无机纳米颗粒在纳米颗粒表面与蛋白质相互作用,并在给药时改变其构象;然而,这种相互作用的潜在原理仍不清楚。本研究旨在利用傅里叶变换红外光谱研究与具有不同表面修饰的CeO纳米颗粒混合的牛血清白蛋白(BSA)中发生的二级结构变化。使用均相沉淀法从硝酸铈(III)水溶液中合成了CeO纳米颗粒(直径:240 nm)。纳米颗粒的表面用儿茶酚化合物多巴胺和3,4-二羟基氢化肉桂酸(DHCA)进行了修饰。在这些CeO纳米颗粒(0.11 - 0.43 mg/mL)存在的情况下,尤其是在胺修饰(带正电)的纳米颗粒上,促进了BSA(30 mg/mL)的β-折叠形成。带正电的纳米颗粒表面BSA的局部浓度可能由于与BSA的静电和其他相互作用而导致结构变化。对纳米颗粒与蛋白质之间相互作用机制的进一步研究有望实现无机纳米颗粒在生物医学领域的安全应用。