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Genetically Engineered Elastomeric Polymer Network through Protein Zipper Assembly

机译:通过蛋白质拉链组件进行基因设计的弹性聚合物网络

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The rich palette of chemical and functional diversity found within peptides has driven the recent interest in bottom-up assembly of soft polypeptide-based materials. Herein, we describe the creation of a novel helix-elastin like polymer or HELP. HELP marries the specificity of coiled-coil interactions with the elasticity and stimuli-responsive behavior of elastin, a class of polymers with extraordinary elasticity. We used Rosetta to computationally design highly specific protein helical zippers to connect short elastin segments. The programmed pairing between the helical blocks of two individual chains produced a genetically encoded material that, when deposited on a substrate, formed a flexible and porous 2D planar network with controllable porosity that responds dynamically upon applica- tion of stimuli.
机译:在肽中发现的化学和功能多样性的丰富调色板促使最近对软多肽材料的自下而上组装的兴趣。 在本文中,我们描述了一种新颖的螺旋 - 丙酯(如聚合物或帮助)的创建。 帮助将盘绕线圈相互作用的特异性与具有非凡弹性的聚合物类别的弹性和刺激性反应行为结合。 我们使用Rosetta来计算设计高度特异性的蛋白螺旋拉链,以连接短弹性蛋白段。 两个单个链的螺旋块之间的编程配对产生了一种遗传编码的材料,该材料在基板上沉积时,形成具有可控孔隙率的柔性和多孔2D平面网络,该网络对刺激的应用动态响应。

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