Kluge Jonathan A, Rabotyagova Olena, Leisk Gary G, Kaplan David L
Department of Biomedical Engineering, Chemistry and Mechanical Engineering, Tufts University, Medford, MA 02155, USA.
Trends Biotechnol. 2008 May;26(5):244-51. doi: 10.1016/j.tibtech.2008.02.006. Epub 2008 Mar 25.
Spider silks are characterized by remarkable diversity in their chemistry, structure and functions, ranging from orb web construction to adhesives and cocoons. These unique materials have prompted efforts to explore potential applications of spider silk equivalent to those of silkworm silks, which have undergone 5,000 years of domestication and have a variety of uses, from textiles to biomedical materials. Recent progress in genetic engineering of spider silks and the development of new chimeric spider silks with enhanced functions and specific characteristics have advanced spider silk technologies. Further progress in yields of expressed spider-silk proteins, in the control of self-assembly processes and in the selective exploration of material applications is anticipated in the future. The unique features of spider silks, the progress and challenges in the cloning and expression of these silks, environmentally triggered silk assembly and disassembly and the formation of fibers, films and novel chimeric composite materials from genetically engineered spider silks will be reviewed.
蜘蛛丝在化学组成、结构和功能方面具有显著的多样性,其应用范围涵盖从蛛网构建到粘合剂和茧等多个领域。这些独特的材料促使人们努力探索蜘蛛丝与家蚕丝相当的潜在应用,家蚕丝已经历了5000年的驯化,具有多种用途,从纺织品到生物医学材料。蜘蛛丝基因工程的最新进展以及具有增强功能和特定特性的新型嵌合蜘蛛丝的开发推动了蜘蛛丝技术的发展。预计未来在表达蜘蛛丝蛋白的产量、自组装过程的控制以及材料应用的选择性探索方面将取得进一步进展。本文将综述蜘蛛丝的独特特性、这些丝的克隆和表达方面的进展与挑战、环境触发的丝组装和解组装以及由基因工程蜘蛛丝形成纤维、薄膜和新型嵌合复合材料的情况。