College of Pharmacy, Gachon University, Yeonsu-gu, Incheon, South Korea.
Int J Nanomedicine. 2012;7:4325-33. doi: 10.2147/IJN.S33696. Epub 2012 Aug 6.
The conformational changes of plasma protein structures in response to carbon nanotubes are critical for determining the nanotoxicity and blood coagulation effects of carbon nanotubes. In this study, we identified that the functional intensity of carboxyl groups on carbon nanotubes, which correspond to the water dispersity or hydrophilicity of carbon nanotubes, can induce conformational changes in the fibrinogen domains. Also, elevation of carbon nanotube density can alter the secondary structures (ie, helices and beta sheets) of fibrinogen. Furthermore, fibrinogen that had been in contact with the nanoparticle material demonstrated a different pattern of heat denaturation compared with free fibrinogen as a result of a variation in hydrophilicity and concentration of carbon nanotubes. Considering the importance of interactions between carbon nanotubes and plasma proteins in the drug delivery system, this study elucidated the correlation between nanoscale physiochemical material properties of carbon nanotubes and associated structural changes in fibrinogen.
血浆蛋白结构对碳纳米管的构象变化是决定碳纳米管纳米毒性和血液凝固作用的关键。在这项研究中,我们发现碳纳米管上羧基基团的功能强度(与碳纳米管的水分散性或亲水性相对应)可引起纤维蛋白原结构域的构象变化。此外,碳纳米管密度的增加会改变纤维蛋白原的二级结构(即螺旋和β片层)。此外,由于碳纳米管的亲水性和浓度发生变化,与纳米颗粒材料接触的纤维蛋白原与游离纤维蛋白原相比,其热变性模式也不同。考虑到碳纳米管与血浆蛋白之间相互作用在药物传递系统中的重要性,本研究阐明了碳纳米管的纳米级物理化学材料特性与纤维蛋白原相关结构变化之间的相关性。