Politi Yael, Pippel Eckhard, Licuco-Massouh Ana C J, Bertinetti Luca, Blumtritt Horst, Barth Friedrich G, Fratzl Peter
Department of Biomaterials, Max Planck Institute of Colloids and Interfaces, 14424, Potsdam, Germany.
Max Planck Institute of Microstructure Physics, D-06120, Halle/Saale, Germany.
Arthropod Struct Dev. 2017 Jan;46(1):30-38. doi: 10.1016/j.asd.2016.06.001. Epub 2016 Sep 7.
We identify the presence of multiple vascular channels within the spider fang. These channels seem to serve the transport of zinc to the tip of the fang to cross-link the protein matrix by binding to histidine residues. According to amino acid and elemental analysis of fangs extracted shortly after ecdysis, His-rich proteins are deposited before Zn is incorporated into the cuticle. Microscopic and spectroscopic investigations in the electron microscope and synchrotron radiation experiments suggest that Zn ions are transported through these channels in a liable (yet unidentified) form, and then form stable complexes upon His binding. The resulting cross-linking through the Zn-His complexes is conferring hardness to the fang. Our observations of nano-channels serving the Zn-transport within the His-rich protein matrix of the fibre reinforced spider fang may also support recent bio-inspired attempts to design artificial polymeric vascular materials for self-healing and in-situ curing.
我们确定了蜘蛛毒牙内存在多个血管通道。这些通道似乎用于将锌运输到毒牙尖端,通过与组氨酸残基结合来交联蛋白质基质。根据蜕皮后不久提取的毒牙的氨基酸和元素分析,富含组氨酸的蛋白质在锌掺入角质层之前就已沉积。电子显微镜下的微观和光谱研究以及同步辐射实验表明,锌离子以一种不稳定(但尚未确定)的形式通过这些通道运输,然后在与组氨酸结合时形成稳定的复合物。通过锌-组氨酸复合物产生的交联赋予了毒牙硬度。我们对纤维增强蜘蛛毒牙富含组氨酸的蛋白质基质内用于锌运输的纳米通道的观察,也可能支持最近受生物启发设计用于自我修复和原位固化的人工聚合物血管材料的尝试。