Zhang Yaopeng, Yang Hongxia, Shao Huili, Hu Xuechao
State Key Laboratory for Modification of Chemical Fibers and Polymer Materials, College of Material Science and Engineering, Donghua University, Shanghai 201620, China.
J Biomed Biotechnol. 2010;2010:683962. doi: 10.1155/2010/683962. Epub 2010 May 5.
The outstanding properties of spider dragline silk are likely to be determined by a combination of the primary sequences and the secondary structure of the silk proteins. Antheraea pernyi silk has more similar sequences to spider dragline silk than the silk from its domestic counterpart, Bombyx mori. This makes it much potential as a resource for biospinning spider dragline silk. This paper further verified its possibility as the resource from the mechanical properties and the structures of the A. pernyi silks prepared by forcible reeling. It is surprising that the stress-strain curves of the A. pernyi fibers show similar sigmoidal shape to those of spider dragline silk. Under a controlled reeling speed of 95 mm/s, the breaking energy was 1.04 x 10(5) J/kg, the tensile strength was 639 MPa and the initial modulus was 9.9 GPa. It should be noted that this breaking energy of the A. pernyi silk approaches that of spider dragline silk. The tensile properties, the optical orientation and the beta-sheet structure contents of the silk fibers are remarkably increased by raising the spinning speeds up to 95 mm/s.
蜘蛛拖牵丝卓越的性能可能由丝蛋白的一级序列和二级结构共同决定。与家蚕的丝相比,柞蚕丝的序列与蜘蛛拖牵丝更为相似。这使其作为生物纺丝蜘蛛拖牵丝的资源具有很大潜力。本文通过强制缫丝制备的柞蚕丝的力学性能和结构,进一步验证了其作为该资源的可能性。令人惊讶的是,柞蚕丝纤维的应力-应变曲线与蜘蛛拖牵丝的曲线呈现相似的S形。在95毫米/秒的可控缫丝速度下,断裂能为1.04×10⁵焦/千克,拉伸强度为639兆帕,初始模量为9.9吉帕。应当指出的是,柞蚕丝的这一断裂能接近蜘蛛拖牵丝的断裂能。将纺丝速度提高到95毫米/秒,丝纤维的拉伸性能、取向度和β-折叠结构含量显著增加。