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Impact of Shape and Pore Size of Mesoporous Silica Nanoparticles on Serum Protein Adsorption and RBCs Hemolysis

机译:介孔二氧化硅纳米颗粒的形状和孔径对血清蛋白吸附和红细胞溶血的影响

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With the rapid development of nanotechnology, mesoporous silica nanoparticles (MSNs) with numerous forms and structures have been synthesized and extensively applied in biomedicine in the past decades. However, our knowledge about the biocompatibility of the developed MSNs has not matched their development. Therefore, in this work, we have synthesized sphere-shaped MSNs with different pore scales (s-SPs and l-SPs) and rod-shape (RPs-3) MSNs to evaluate the influence of the morphology and pore size on their interaction with serum proteins and red blood cells (RBCs). The adsorption of human albumin (HSA), globulin (HGG), and fibrinogen (HSF) onto different kinds of MSNs has been analyzed by pseudo second-order kinetic model, and the conformational changes of the adsorbed proteins have been studied by FTIR spectroscopy. We find that the conformation of absorbed HSA and HSF, while not HGG, will be affected by the pore size and morphology of the MSNs. The conformational changes of the adsorbed proteins will further affect their saturated adsorption capacity. However, the initial adsorption rate is only determined by the property of MSNs and proteins. Additional hemolysis assay shows that the pore size and morphology of the MSNs will also affect their hemolytic activity in RBCs which will be extremely depressed by the formation of protein corona. These systematic studies will provide an overall understanding in the blood compatibility of MSNs as well as useful guidelines for fabrication of blood-compatible nanomaterials.
机译:随着纳米技术的飞速发展,在过去的几十年中,具有多种形式和结构的介孔二氧化硅纳米粒子(MSN)已经被合成并广泛应用于生物医学。但是,我们对已开发的MSN的生物相容性的了解与他们的发展不符。因此,在这项工作中,我们合成了具有不同孔径(s-SPs和l-SPs)和棒状(RPs-3)MSN的球形MSN,以评估形态和孔径对它们之间相互作用的影响。血清蛋白和红细胞(RBC)。通过伪二级动力学模型分析了人类白蛋白(HSA),球蛋白(HGG)和纤维蛋白原(HSF)在不同种类的MSN上的吸附,并通过FTIR光谱研究了吸附蛋白的构象变化。我们发现吸收的HSA和HSF的构象,而不是HGG,将受到MSNs的孔径和形态的影响。吸附蛋白的构象变化将进一步影响其饱和吸附能力。但是,初始吸附率仅由MSN和蛋白质的性质决定。额外的溶血试验表明,MSN的孔径和形态也会影响其在RBC中的溶血活性,而红血球会因蛋白质电晕的形成而大大降低。这些系统的研究将提供对MSNs血液相容性的全面理解,以及对血液相容性纳米材料制造的有用指导。

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