Miserez Ali, Schneberk Todd, Sun Chengjun, Zok Frank W, Waite J Herbert
Materials Department, University of California, Santa Barbara, CA 93106, USA.
Science. 2008 Mar 28;319(5871):1816-9. doi: 10.1126/science.1154117.
The beak of the Humboldt squid Dosidicus gigas represents one of the hardest and stiffest wholly organic materials known. As it is deeply embedded within the soft buccal envelope, the manner in which impact forces are transmitted between beak and envelope is a matter of considerable scientific interest. Here, we show that the hydrated beak exhibits a large stiffness gradient, spanning two orders of magnitude from the tip to the base. This gradient is correlated with a chemical gradient involving mixtures of chitin, water, and His-rich proteins that contain 3,4-dihydroxyphenyl-L-alanine (dopa) and undergo extensive stabilization by histidyl-dopa cross-link formation. These findings may serve as a foundation for identifying design principles for attaching mechanically mismatched materials in engineering and biological applications.
洪堡乌贼(Dosidicus gigas)的喙是已知最坚硬、最僵硬的全有机材料之一。由于它深深嵌入柔软的口腔包膜中,冲击力在喙和包膜之间的传递方式具有相当大的科学研究价值。在此,我们表明,水合状态的喙呈现出很大的刚度梯度,从尖端到基部跨越两个数量级。这种梯度与一种化学梯度相关,该化学梯度涉及几丁质、水和富含组氨酸的蛋白质的混合物,这些蛋白质含有3,4-二羟基苯-L-丙氨酸(多巴),并通过组氨酰-多巴交联形成进行广泛的稳定化。这些发现可为确定工程和生物应用中连接机械性能不匹配材料的设计原则奠定基础。