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首页> 外文期刊>Journal of Colloid and Interface Science >The position of lysine controls the catechol-mediated surface adhesion and cohesion in underwater mussel adhesion
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The position of lysine controls the catechol-mediated surface adhesion and cohesion in underwater mussel adhesion

机译:赖氨酸的位置控制水下贻贝粘附中的儿茶酚介导的表面粘附和内聚力

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Intensive studies have found that 3,4-dihydroxyphenylalanine (Dopa) is one of the key molecules for underwater mussel adhesion. Although basic mechanisms of mussel adhesion have been elucidated, little is known about how mussels control the balance between surface adhesion and cohesion, which is critical for successful adhesion without peeling and/or tearing. In this work, we focused on lysine (Lys) molecules which are frequently flanked to Dopa residues in interfacial adhesive proteins, specifically their synergy and anti-synergy on surface adhesion and cohesion. Three model peptides were designed to characterize flanking Lys effects. Through nano-mechanistic analyses, we found that flanking Lys enhanced surface adhesion but disrupted Fe3+-mediated cohesion. Through nuclear magnetic resonance analyses and density functional theory calculations, we corroborated the synergetic effect on surface adhesion and anti-synergetic effect on cohesion. We also confirmed the consistency of flanking Lys effects in the actual protein system. Thus, we, for the first time, discovered that each Dopa molecule in interfacial adhesive proteins is participated in surface adhesion and cohesion differently through controlling the existence of flanking Lys. Our discovery enlightens how nature designs adhesive proteins through according roles of Dopa. (C) 2019 Elsevier Inc. All rights reserved.
机译:强化研究发现,3,4-二羟基苯丙氨酸(DOPA)是水下贻贝粘附的关键分子之一。虽然酶粘连的基本机制已经阐明,但是关于贻贝如何控制表面粘附和内聚力之间的平衡,这几乎是众所周知的,这对于成功粘合而不剥离和/或撕裂至关重要。在这项工作中,我们专注于赖氨酸(Lys)分子,这些分子经常在界面粘合剂蛋白中的DOPA残基中侧翼,特别是它们在表面粘附和内聚力上的协同和抗协同作用。设计了三种模型肽以表征侧翼效果。通过纳米机械分析,我们发现侧翼Lys增强了表面粘附性,但破坏了Fe3 +介质的内聚力。通过核磁共振分析和密度泛函理论计算,我们证实了对凝聚力的表面粘附和抗协同作用的协同作用。我们还确认了侧翼Lys效应在实际蛋白质系统中的一致性。因此,我们首次发现界面粘合剂蛋白中的每个DOPA分子通过控制侧翼液体的存在而不同地参与表面粘附和内聚力。我们的发现通过DOPA的作用来启发自然设计粘合剂蛋白。 (c)2019 Elsevier Inc.保留所有权利。

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