Dipartimento di Chimica G. Ciamician, Alma Mater Studiorum Università di Bologna, Via Selmi 2, 40126, Bologna, Italy.
Dalton Trans. 2011 Jan 28;40(4):820-7. doi: 10.1039/c0dt00714e. Epub 2010 Dec 13.
Lactoferrin (LF), a well-characterized protein of blood plasma and milk with antioxidant, cariostatic, anticarcinogenic and anti-inflammatory properties, has been adsorbed onto biomimetic hydroxyapatite (HA) nanocrystals at two different pH values (7.4 and 9.0). The interaction was herein investigated by spectroscopic, thermal and microscopic techniques. The positive electrostatic surface potential of LF at pH 7.4 allows a strong surface interaction with the slightly negative HA nanocrystals and avoids the protein-protein interaction, leading to the formation of a coating protein monolayer. In contrast, at pH 9.0 the surface potential of LF is a mix of negative and positive zones favouring the protein-protein interaction and reducing the interaction with HA nanocrystals; as a result a double layer of coating protein was formed. These experimental findings are supported by the good fittings of the adsorption isotherms by different theoretical models according to Langmuir, Freundlich and Langmuir-Freundlich models. The nanosized HA does not appreciably affect the conformation of the adsorbed protein. In fact, using FT-Raman and FT-IR, we found that after adsorption the protein was only slightly unfolded with a small fraction of the α-helix structure being converted into turn, while the β-sheet content remained almost unchanged. The bioactive surface of HA functionalized with LF could be utilized to improve the material performance towards the biological environment for biomedical applications.
乳铁蛋白(LF)是一种具有抗氧化、防龋、抗癌和抗炎特性的血清新陈代谢蛋白,已被吸附到仿生羟基磷灰石(HA)纳米晶体上,其吸附发生在两个不同的 pH 值(7.4 和 9.0)下。本研究采用光谱、热和显微镜技术对其相互作用进行了研究。在 pH 7.4 时,LF 的正静电表面电势使其与略带负电的 HA 纳米晶体之间产生强烈的表面相互作用,从而避免了蛋白质-蛋白质相互作用,导致形成一层覆盖蛋白质的单分子层。相比之下,在 pH 9.0 时,LF 的表面电势是负电区和正电区的混合体,有利于蛋白质-蛋白质相互作用,并减少与 HA 纳米晶体的相互作用;因此形成了双层覆盖蛋白质。这些实验结果得到了不同理论模型(根据朗缪尔、弗伦德利希和朗缪尔-弗伦德利希模型)对吸附等温线的良好拟合的支持。纳米 HA 不会显著影响吸附蛋白的构象。实际上,通过傅里叶变换拉曼和傅里叶变换红外光谱,我们发现吸附后蛋白质只是略有展开,部分α-螺旋结构转化为转角,而β-折叠含量几乎保持不变。用 LF 功能化的 HA 的生物活性表面可用于改善材料在生物环境中的性能,从而应用于生物医学领域。