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Biomolecular interactions control the shape of stains from drying droplets of complex fluids

机译:生物分子相互作用可控制复杂流体干燥液滴中污渍的形状

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摘要

When a sessile droplet of a complex fluid dries, a stain forms on the solid surface. The structure and pattern of the stain can be used to detect the presence of a specific chemical compound in the sessile droplet. In the present work, we investigate what parameters of the stain or its formation can be used to characterize the specific interaction between an aqueous dispersion of beads and its receptor immobilized on the surface. We use the biotin-streptavidin system as an experimental model. Clear dissimilarities were observed in the drying sequences on streptavidin-coated substrates of droplets of aqueous solutions containing biotin-coated or streptavidin-coated beads. Fluorescent beads are used in order to visualize the fluid flow field. We show differences in the distribution of the particles on the surface depending on biomolecular interactions between beads and the solid surface. A mechanistic model is proposed to explain the different patterns obtained during drying. The model describes that the beads are left behind the receding wetting line rather than pulled towards the drop center if the biological binding force is comparable to the surface tension of the receding wetting line. Other forces such as the viscous drag, van der Waals forces, and solid–solid friction forces are found negligible. Simple microfluidics experiments are performed to further illustrate the difference in behavior where is adhesion or friction are present between the bead and substrate due to the biological force. The results of the model are in agreement with the experimental observations which provide insight and design capabilities. A better understanding of the effects of the droplet–surface interaction on the drying mechanism is a crucial first step before the identification of drying patterns can be promisingly applied to areas such as immunology and biomarker detection.
机译:当固液的无固定液滴干燥时,在固体表面上会形成污点。污渍的结构和图案可用于检测固定液滴中特定化合物的存在。在本工作中,我们研究了污渍或其形成的哪些参数可用于表征珠的水分散体与其固定在表面上的受体之间的特异性相互作用。我们使用生物素-链霉亲和素系统作为实验模型。在包含生物素包被的或链霉亲和素包被的珠的水溶液的液滴的干燥顺序上,在链霉亲和素包被的基底上的干燥顺序中观察到明显的差异。使用荧光珠以可视化流体流场。我们显示了取决于珠和固体表面之间的生物分子相互作用,表面上颗粒分布的差异。提出了一种机械模型来解释在干燥过程中获得的不同图案。该模型描述,如果生物结合力与后退润湿线的表面张力相当,则珠子会留在后退润湿线的后面,而不是被拉向液滴中心。发现其他力(如粘性阻力,范德华力和固-固摩擦力)可以忽略不计。进行了简单的微流体实验,以进一步说明由于生物力而在珠子和基材之间存在粘附或摩擦的行为差异。模型的结果与提供洞察力和设计能力的实验观察结果一致。更好地了解液滴-表面相互作用对干燥机理的影响是至关重要的第一步,然后才能将干燥模式的识别有望应用于免疫学和生物标志物检测等领域。

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