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首页> 外文期刊>ACS applied materials & interfaces >Simple and Flexible Model for Laser-Driven Antibody-Gold Surface Interactions: Functionalization and Sensing
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Simple and Flexible Model for Laser-Driven Antibody-Gold Surface Interactions: Functionalization and Sensing

机译:激光驱动的抗体-金表面相互作用的简单而灵活的模型:功能化和传感。

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摘要

Interactions between biomolecules and between substrates and biomolecules is a crucial issue in physics and applications to topics such as biotechnology and organic electronics. The efficiency of bio- and mechanical sensors, of organic electronics systems, and of a number of other devices critically depends on how molecules are deposited on a surface so that these acquire specific functions. Here, we tackle this vast problem by developing a coarse grained model of biomolecules having a recognition function, such as antibodies, capable to quantitatively describe in a simple manner essential phenomena: antigen-antibody and antibody substrate interactions. The model is experimentally tested to reproduce the results of a benchmark case, such as (1) gold surface functionalization with antibodies and (2) antibody-antigen immune-recognition function. The agreement between experiments and model prediction is excellent, thus unveiling the mechanism for antibody immobilization onto metals at the nanoscale in various functionalization schemes. These results shed light on the geometrical packing properties of the deposited molecules, and may open the way to a novel coarse-grained based approach to describe other processes where molecular packing is a key issue with applications in a huge number of fields from nano- to biosciences.
机译:生物分子之间以及底物和生物分子之间的相互作用是物理学及其在诸如生物技术和有机电子学等主题中的应用中的关键问题。生物和机械传感器,有机电子系统以及许多其他设备的效率关键取决于分子在表面上的沉积方式,从而使这些分子获得特定功能。在这里,我们通过开发具有识别功能的生物分子(例如抗体)的粗粒度模型来解决这个巨大的问题,该模型能够以简单的方式定量描述以下基本现象:抗原-抗体和抗体底物相互作用。对模型进行了实验测试,以重现基准案例的结果,例如(1)抗体的金表面功能化和(2)抗体-抗原免疫识别功能。实验和模型预测之间的一致性非常好,因此揭示了在各种功能化方案中将抗体固定在纳米级金属上的机制。这些结果揭示了所沉积分子的几何堆积特性,并可能为描述基于其他过程的新型粗粒度方法开辟了道路,其中分子堆积是从纳米到纳米的众多领域中应用的关键问题生物科学。

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