Sargent Cameron J, Bowen Christopher H, Zhang Fuzhong
Division of Biological & Biomedical Sciences, Washington University in St. Louis, Saint Louis, MO, USA.
Department of Energy, Environmental and Chemical Engineering, Washington University in St. Louis, Saint Louis, MO, USA.
Methods Mol Biol. 2025;2902:161-172. doi: 10.1007/978-1-0716-4402-7_10.
Nature has produced a variety of proteinaceous materials, each with a set of mechanical properties tuned by evolution to adapt to particular environments. While these advantageous properties have also made many of these materials well-suited to various human needs, few protein materials can be harvested from their natural hosts at scale. To meet the demand for these materials using scalable biomanufacturing processes, our lab has developed tools and a biopolymerization platform for the microbial synthesis and processing of nature-derived, high-molecular-weight protein polymers. In this chapter, we describe the application of this platform for polymerizing a segment of the muscle protein titin and processing the resulting polymer into high-performance, muscle-mimetic fibers with a unique combination of desirable mechanical properties.
自然界产生了各种各样的蛋白质材料,每一种都具有一系列经进化调整以适应特定环境的机械性能。虽然这些有利特性也使其中许多材料非常适合各种人类需求,但很少有蛋白质材料能大规模地从其天然宿主中获取。为了通过可扩展的生物制造工艺满足对这些材料的需求,我们实验室开发了工具和生物聚合平台,用于微生物合成和加工天然来源的高分子量蛋白质聚合物。在本章中,我们描述了该平台在聚合肌肉蛋白肌联蛋白片段以及将所得聚合物加工成具有理想机械性能独特组合的高性能、模仿肌肉的纤维方面的应用。