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模具附着。

Adhesion a la moule.

机构信息

Marine Science Institute, Department Molecular, Cell & Developmental Biology, University of California, Santa Barbara, California 93106.

出版信息

Integr Comp Biol. 2002 Dec;42(6):1172-80. doi: 10.1093/icb/42.6.1172.

Abstract

Mussels owe their sessile way of life in the turbulent intertidal zone to adaptive adjustments in the process and biochemistry of permanent attachment. These have understandably attracted scientific interest given that the attachment is rapid, versatile, tough and not subverted by the presence of water. The adhesive pads of mussel byssus contain at least six different proteins all of which possess the peculiar amino acid 3, 4-dihydroxyphenylalanine (DOPA) at concentrations ranging from 0.1 to 30 mol %. Studies of protein distribution in the plaque indicate that proteins with the highest levels of DOPA, such as mefp-3 (20 mol %) and mefp-5 (30 mol %), appear to predominate at or near the interface between the plaque and substratum. Although the presence of DOPA in proteins has traditionally been associated with cross-linking via chelate-mediated or covalent coupling, recent experiments with natural and synthetic DOPA-containing polypeptides suggest that cross-link formation is not the only fate for DOPA. Intact DOPA, particularly near the interface, may be essential for good chemisorption to polar surfaces. Uniformly high DOPA oxidation to cross-links leads to interfacial failure but high cohesive strength, while low DOPA oxidation results in better adhesion at the expense of cohesion. Defining the adaptations involved in balancing these two extremes is crucial to understanding marine adhesion.

摘要

贻贝之所以能够在动荡的潮间带中固着生活,是因为它们在永久性附着的过程和生物化学方面进行了适应性调整。鉴于这种附着快速、多功能、坚韧且不受水的影响,这些适应性调整自然而然地引起了科学界的兴趣。贻贝足丝的黏附垫含有至少六种不同的蛋白质,所有这些蛋白质都含有特殊的氨基酸 3,4-二羟基苯丙氨酸 (DOPA),浓度范围从 0.1 到 30 mol%。对斑块中蛋白质分布的研究表明,DOPA 含量最高的蛋白质,如 mefp-3(20 mol%)和 mefp-5(30 mol%),似乎在斑块和基质的界面处或附近占主导地位。尽管蛋白质中存在 DOPA 传统上与通过螯合介导或共价偶联的交联有关,但对天然和合成含 DOPA 多肽的最新实验表明,交联形成不是 DOPA 的唯一命运。完整的 DOPA,特别是在界面附近,对于极性表面的良好化学吸附可能是必不可少的。均匀的高 DOPA 氧化交联会导致界面失效,但高内聚强度,而低 DOPA 氧化会以牺牲内聚强度为代价获得更好的附着力。定义平衡这两个极端所涉及的适应性对于理解海洋附着至关重要。

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