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Probing the mechanism of plasma protein adsorption on Au and Ag nanoparticles with FT-IR spectroscopy

机译:探讨血浆蛋白吸附的机理非盟和Ag纳米粒子与傅立叶变换红外光谱光谱学

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Protein-nanoparticle interactions are important in biomedical applications of nanoparticles and for growing biosafety concerns about nanomaterials. In this study, the interactions of four plasma proteins, human serum albumin (HSA), myoglobin (MB), hemoglobin (HB), and trypsin (TRP), with Au and Ag nanoparticles were investigated by FT-IR spectroscopy. The secondary structure of thio-proteins changed with time during incubation with Au and Ag nanoparticles, but the secondary structures of non-thio-proteins remained unchanged. The incubation time for structural changes depended on the sulfur-metal bond energy; the stronger the sulfur-metal energy, the less the time needed. H/D exchange experiments revealed that protein-NP complexes with thio-proteins were less dynamic than free proteins. No measurable dynamic differences were found between free non-thio-proteins and the protein-Au (or Ag) nanoparticle complex. Therefore, the impact of covalent bonds on the protein structure is greater than that of the electrostatic force.
机译:Protein-nanoparticle相互作用是重要的纳米颗粒和生物医学应用纳米材料生物安全担忧。在这项研究中,四个等离子体的相互作用蛋白质,人血清白蛋白(HSA),肌红蛋白(MB)、血红蛋白(HB)、胰蛋白酶(TRP),非盟和Ag纳米颗粒被红外光谱研究光谱学。孵化期间thio-proteins随着时间的推移而改变非盟和Ag纳米颗粒,但次要的结构non-thio-proteins仍不变。变化取决于sulfur-metal债券能量;sulfur-metal能量越强,越少所需的时间。透露,protein-NP复合物thio-proteins动态比免费更低蛋白质。发现自由non-thio-proteins和之间protein-Au (Ag)纳米颗粒复杂。因此,共价键的的影响大于的蛋白质结构静电力。

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