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Adhesion of DOPA-Functionalized Model Membranes to Hard and Soft Surfaces

机译:DOPA功能化模型膜在硬和软表面上的附着力

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摘要

The adhesive proteins secreted by marine mussels form a natural glue that cures rapidly to form strong and durable bonds in aqueous environments. These mussel adhesive proteins contain an unusual amino acid, 3,4-dihydroxy-L-phenylalanine (DOPA), which is largely responsible for their cohesive and adhesive strengths. In this study, we incorporated DOPA into diblock and triblock polymers and developed a membrane contact experiment to assess the adhesive interactions of these materials with TiO2 and tissue surfaces. In a typical experiment a micrometer-thick DOPA-functionalized elastomeric membrane is attached to the end of a cylindrical glass tube. Application of a positive pressure to the tube brings the membrane into contact with the surface of interest. The negative pressure needed to separate the membrane from the substrate is a measure of the strength of the adhesive interaction. The test confirms previous results obtained with TiO2 substrates. Because the membrane geometry is well suited for rough or chemically heterogeneous surfaces, it is ideal for studies of tissue adhesion. DOPA was found to give strong adhesion to tissue surfaces, with the strongest adhesion obtained when the DOPA groups were oxidized while in contact with the tissue surface.
机译:贻贝分泌的粘附蛋白形成天然胶,可在水性环境中快速固化以形成牢固而持久的键。这些贻贝粘附蛋白包含一种不寻常的氨基酸3,4-二羟基-L-苯丙氨酸(DOPA),这在很大程度上决定了它们的内聚力和粘附力。在这项研究中,我们将DOPA掺入二嵌段和三嵌段聚合物中,并开展了膜接触实验,以评估这些材料与TiO2和组织表面的粘合作用。在典型的实验中,将微米级的DOPA官能化的弹性膜连接到圆柱形玻璃管的末端。向管子施加正压力会使膜与目标表面接触。使膜与基底分离所需的负压是粘合剂相互作用强度的量度。该测试证实了使用TiO2基材获得的先前结果。因为膜的几何形状非常适合粗糙或化学异质表面,所以它是研究组织粘附的理想选择。发现DOPA对组织表面具有强粘附力,当DOPA基团与组织表面接触时被氧化时,DOPA具有最强的粘附力。

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