BIOFORGE Research Group, University of Valladolid, CIBER-BBN, Valladolid, Spain.
Biotechnol J. 2011 Oct;6(10):1174-86. doi: 10.1002/biot.201100116. Epub 2011 Sep 20.
The past few decades have witnessed the development of novel naturally inspired biomimetic materials, such as polysaccharides and proteins. Likewise, the seemingly exponential evolution of genetic-engineering techniques and modern biotechnology has led to the emergence of advanced protein-based materials with multifunctional properties. This approach allows extraordinary control over the architecture of the polymer, and therefore, monodispersity, controlled physicochemical properties, and high sequence complexity that would otherwise be impossible to attain. Elastin-like recombinamers (ELRs) are emerging as some of the most prolific of these protein-based biopolymers. Indeed, their inherent properties, such as biocompatibility, smart nature, and mechanical qualities, make these recombinant polymers suitable for use in numerous biomedical and nanotechnology applications, such as tissue engineering, "smart" nanodevices, drug delivery, and protein purification. Herein, we present recent progress in the biotechnological applications of ELRs and the most important genetic engineering-based strategies used in their biosynthesis.
过去几十年见证了新型天然启发的仿生材料的发展,如多糖和蛋白质。同样,基因工程技术和现代生物技术的看似指数级的发展也导致了具有多功能特性的先进蛋白质基材料的出现。这种方法允许对聚合物的结构进行非凡的控制,从而实现单分散性、可控的物理化学性质和高序列复杂性,否则这些是不可能实现的。弹性蛋白样重组体(ELR)正在成为这些蛋白质基生物聚合物中最丰富的一类。事实上,它们的固有特性,如生物相容性、智能性质和机械性能,使这些重组聚合物适合于许多生物医学和纳米技术应用,如组织工程、“智能”纳米器件、药物输送和蛋白质纯化。本文介绍了 ELR 在生物技术应用方面的最新进展,以及在它们的生物合成中使用的最重要的基于遗传工程的策略。