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Conformational Mechanics of Stimulus-Responsive Polypeptides

机译:刺激响应多肽的构象力学

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Stimulus-responsive polymers and polypeptides (SRPs) experience a significant entropic response when exposed to an environmental stimulus, such as a change in temperature. This phase transition directly affects polymer conformation and can potentially be harnessed for force generation in actuation devices on nano- and micro-scales. While interfacial applications of SRPs have been prototypically demonstrated, a systematic investigation of the phase transition behavior at the solid-liquid interface and on the single-molecule level is lacking. In this paper we present results from force-spectroscopy measurements probing the force-extension and con-formational behavior of one SRP, elastin-like polypeptides (ELP), below and above their transition temperature. The results indicate that there is no significant difference in the force extension behavior at intermediate and large extensions, but the behavior is dramatically different at small extensions. Results also demonstrated that above the phase transition temperature large, unspecific adhesion forces often gave way to constant force steps upon extension, indicating a collapsed, potentially entangled, hydrophobic state of the ELP. The extension behavior below the phase transition temperature, however, closely followed that of a random polymer coil, without any significant unspecific adhesion forces. The excellent fit of a simple extended freely jointed chain model to the data at intermediate and large extensions suggests that the ELP is in a random confomational state without significant secondary structure. Forces associated with a phase transition therefore arise likely from entropic conformational changes associated with a hydrophobic collapse.
机译:当受到环境刺激(例如温度变化)时,刺激响应性聚合物和多肽(SRP)会经历明显的熵响应。这种相变直接影响聚合物的构象,并有可能被利用来在纳米级和微米级的致动装置中产生力。虽然SRP的界面应用已得到原型证明,但仍缺乏对固液界面和单分子水平上相变行为的系统研究。在本文中,我们介绍了力谱测量的结果,探测了一种SRP,弹性蛋白样多肽(ELP)在其转变温度以下和以上的作用力扩展和构象行为。结果表明,在中等和较大拉伸时,力的拉伸行为没有显着差异,但是在较小拉伸时,该行为有显着差异。结果还表明,在相变温度以上,较大的非特异性粘附力通常在延伸时逐渐屈服于恒定的力阶跃,这表明ELP处于塌陷,可能纠缠的疏水状态。然而,在相变温度以下的延伸行为紧随无规聚合物线圈的延伸行为,而没有任何明显的非特异性粘附力。简单扩展的自由连接链模型与中间扩展和大扩展的数据的出色拟合表明,ELP处于随机配置状态,没有明显的二级结构。因此,与相变相关的力很可能来自与疏水塌陷相关的熵构象变化。

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