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Investigation of spontaneously adsorbed globular protein films using high-frequency bulk acoustic wave resonators

机译:使用高频体声波谐振器研究自发吸附的球状蛋白膜

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In this paper we use micromachined, high-frequency, quartz bulk acoustic wave resonators to systematically study the physical and viscoelastic properties of spontaneously adsorbed globular protein films with molecular weights (MW) spanning two orders of magnitude. Specifically, changes in the frequency and the Q-factor of the micromachined resonator array were studied as a function of concentration for three proteins, namely Human Serum albumin (HSA), Immunoglobulin G (IgG) and Human Fibrinogen (Fib) at the fundamental and third resonance modes. The results obtained were interpreted using equivalent electrical impedance models for the multilayer stack on the QCM surface. Discrete changes in the protein adsorption rate constant and the viscoelastic behavior was observed for all the three protein films. The spherical core-shell protein model is used to provide a simple explanation of the results. The work presented is a systematic and quantitative evaluation of the density, thickness, viscosity, and elastic modulus of the globular protein films, which was possible, due the use of the micromachined high frequency bulk acoustic wave resonators.
机译:在本文中,我们使用微加工的高频石英体声波谐振器系统地研究了分子量为两个数量级的自发吸附球状蛋白膜的物理和粘弹性。具体来说,研究了微机械谐振器阵列的频率和Q因子的变化与三种蛋白质浓度的关系,这三种蛋白质分别是人血清白蛋白(HSA),免疫球蛋白G(IgG)和人纤维蛋白原(Fib)的基本和第三共振模式。使用等效电阻抗模型对QCM表面上的多层堆栈解释获得的结果。对于所有三个蛋白质膜,均观察到蛋白质吸附速率常数和粘弹性行为的离散变化。球形核-壳蛋白模型用于提供结果的简单解释。提出的工作是对球状蛋白膜的密度,厚度,粘度和弹性模量的系统和定量评估,这可能是由于使用了微加工的高频体声波谐振器而引起的。

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