一种独特的富含蛋氨酸的蛋白质-文石晶体复合物:富喀塔双壳合叶韧带的结构和力学功能

Michio Suzuki, K. Kubota, R. Nishimura, L. Negishi, K. Komatsu, H. Kagi, Katya Rehav, S. Cohen, I. Pinkas
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引用次数: 3

摘要

双壳铰链韧带将两个壳连接在一起。在被内收肌关闭后,韧带的作用就像弹簧一样打开壳。韧带是一种矿化组织,与任何其他已知组织都不相似。大约一半的韧带由富含蛋白质的基质组成,一半由长而极薄的分节文石晶体组成。这里我们研究了珍珠牡蛎的铰链韧带。FIB扫描电镜显示,三维组织明显有序。主要蛋白成分的完整序列包含MMMLPD的30个重复的连续片段。没有已知的同源蛋白。敲除这种蛋白质可以阻止晶体的形成,这表明基质的完整性是晶体形成的必要条件。x射线衍射显示文石晶体在压缩韧带中排列更加整齐,表明晶体可能对弹性性能有积极的贡献。连接韧带和贝壳珠层的融合间期由棱柱状矿化组织组成,其中心有一层薄薄的富含有机物的层。干间相的纳米压痕表明,相邻间相的珠层的弹性模量逐渐减小,直到接近间相的弹性模量。间期模量略有增加,直至与韧带相匹配。所有这些观察都表明,韧带壳复合体是一种非凡的生物组织,它已经进化出独特的特性,使双壳类动物在其一生中能够无数次有效地打开外壳。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A Unique Methionine-Rich Protein - Aragonite Crystal Complex: Structure and Mechanical Functions of the Pinctada Fucata Bivalve Hinge Ligament
The bivalve hinge ligament holds the two shells together. The ligament functions as a spring to open the shells after they were closed by the adductor muscle. The ligament is a mineralized tissue that bears no resemblance to any other known tissue. About half the ligament is composed of a protein-rich matrix, and half of long and extremely thin segmented aragonite crystals. Here we study the hinge ligament of the pearl oyster Pinctada fucata. FIB SEM shows that the 3D organization is remarkably ordered. The full sequence of the major protein component contains a continuous segment of 30 repeats of MMMLPD. There is no known homologous protein. Knockdown of this protein prevents crystal formation, demonstrating that the integrity of the matrix is necessary for crystals to form. X-ray diffraction shows that the aragonite crystals are more aligned in the compressed ligament, indicating that the crystals may be actively contributing to the elastic properties. The fusion interphase that joins the ligament to the shell nacre is composed of a prismatic mineralized tissue with a thin organic-rich layer at its center. Nanoindentation of the dry interphase shows that the elastic modulus of the nacre adjacent to the interphase gradually decreases until it approximates that of the interphase. The interphase modulus slightly increases until it matches the ligament. All these observations demonstrate that the ligament shell complex is a remarkable biological tissue that has evolved unique properties that enable bivalves to open their shell effectively innumerable times during the lifetime of the animal.
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