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The inverted free energy landscape of an intrinsically disordered peptide by simulations and experiments

机译:内在无序的肽的反向自由能态的模拟和实验

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摘要

The free energy landscape theory has been very successful in rationalizing the folding behaviour of globular proteins, as this representation provides intuitive information on the number of states involved in the folding process, their populations and pathways of interconversion. We extend here this formalism to the case of the Aβ40 peptide, a 40-residue intrinsically disordered protein fragment associated with Alzheimer’s disease. By using an advanced sampling technique that enables free energy calculations to reach convergence also in the case of highly disordered states of proteins, we provide a precise structural characterization of the free energy landscape of this peptide. We find that such landscape has inverted features with respect to those typical of folded proteins. While the global free energy minimum consists of highly disordered structures, higher free energy regions correspond to a large variety of transiently structured conformations with secondary structure elements arranged in several different manners, and are not separated from each other by sizeable free energy barriers. From this peculiar structure of the free energy landscape we predict that this peptide should become more structured and not only more compact, with increasing temperatures, and we show that this is the case through a series of biophysical measurements.
机译:自由能景观理论在合理化球状蛋白质的折叠行为方面已经非常成功,因为这种表示形式提供了有关折叠过程中涉及的状态数,它们的种群和相互转化途径的直观信息。在这里,我们将这种形式主义扩展到Aβ40肽的情况,Aβ40肽是与阿尔茨海默氏病相关的40个残基的固有紊乱蛋白片段。通过使用先进的采样技术,即使在蛋白质高度混乱的状态下,也可以使自由能计算达到收敛,我们提供了该肽自由能态的精确结构特征。我们发现,相对于折叠蛋白的典型特征,这种景观具有倒置的特征。尽管全球自由能最小值由高度无序的结构组成,但较高的自由能区对应于具有以几种不同方式排列的二级结构元素的各种瞬态结构构象,并且彼此之间没有被较大的自由能垒隔开。根据自由能态势的这种特殊结构,我们预测该肽应随温度的升高而变得更结构化,不仅更紧密,而且通过一系列生物物理测量表明情况就是如此。

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