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Mechanically Untying a Protein Slipknot: Multiple Pathways Revealed by Force Spectroscopy and Steered Molecular Dynamics Simulations

机译:机械解开蛋白活结:力谱和转向分子动力学模拟揭示的多种途径。

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摘要

Protein structure is highly diverse when considering a wide range of protein types, helping to give rise to the multitude of functions that proteins perform. In particular, certain proteins are known to adopt a knotted or slipknotted fold. How such proteins undergo mechanical unfolding was investigated utilizing a combination of single molecule atomic force microscopy (AFM), protein engineer-ing, and steered molecular dynamics (SMD) simulations to show the mechanical unfolding mechanism of the slipknotted protein AFV3-109. Our results reveal that the mechanical unfolding of AFV3-109 can proceed via multiple parallel unfolding pathways that all cause the protein slipknot to untie and the polypeptide chain to completely extend. These distinct unfolding pathways proceed via either a two- or three-state unfolding process involving the formation of a well-defined, stable intermediate state. SMD simulations predict the same contour length increments for different unfolding pathways as single molecule AFM results, thus providing a plausible molecular mechanism for the mechanical unfolding of AFV3-109. These SMD simulations also reveal that two-state unfolding is initiated from both the N- and C-termini, while three-state unfolding is initiated only from the C-terminus. In both pathways, the protein slipknot was untied during unfolding, and no tightened slipknot conformation was observed. Detailed analysis revealed that interactions between key structural elements lock the knotting loop in place, preventing it from shrinking and the formation of a tightened slipknot conformation. Our results demonstrate the bifurcation of the mechanical unfolding pathway of AFV3-109 and point to the generality of a kinetic partitioning mechanism for protein folding/unfolding.
机译:考虑多种蛋白质类型时,蛋白质结构高度多样化,有助于产生蛋白质执行的多种功能。特别地,已知某些蛋白质采用打结或打结的折叠。利用单分子原子力显微镜(AFM),蛋白质工程设计和导向分子动力学(SMD)模拟相结合的方法,研究了此类蛋白质如何进行机械展开,以显示打结的蛋白质AFV3-109的机械展开机制。我们的结果表明,AFV3-109的机械解链可以通过多个平行的解链途径进行,所有这些途径都会导致蛋白质活结解开,多肽链完全延伸。这些不同的展开途径通过两态或三态展开过程进行,涉及形成明确定义的稳定中间状态。 SMD模拟针对不同的展开路径预测了与单分子AFM结果相同的轮廓长度增量,从而为AFV3-109的机械展开提供了合理的分子机制。这些SMD模拟还揭示了从N端和C端均开始两种状态的展开,而仅从C端开始进行三态的展开。在这两种途径中,蛋白质活结在展开过程中均未解开,并且未观察到收紧的活结构象。详细分析显示,关键结构元素之间的相互作用将打结环锁定在适当的位置,从而防止打结环收缩和形成紧密的活结构象。我们的结果证明了AFV3-109的机械展开途径的分支,并指出了蛋白质折叠/展开的动力学分配机制的一般性。

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  • 来源
    《Journal of the American Chemical Society》 |2012年第25期|p.10428-10435|共8页
  • 作者单位

    Department of Chemistry, University of British Columbia, Vancouver, British Columbia V6T 1Z1 Canada;

    Department of Bioengineering, University of Illinois at Chicago, Chicago, Illinois 60680, United States;

    Department of Bioengineering, University of Illinois at Chicago, Chicago, Illinois 60680, United States,Key Lab of Medical Embryo Molecular Biology, Ministry of Health, and Shanghai Lab of Embryo and Reproduction Engineering, Shanghai, P.R. China;

    Department of Chemistry, University of British Columbia, Vancouver, British Columbia V6T 1Z1 Canada;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
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  • 正文语种 eng
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  • 入库时间 2022-08-18 03:13:34

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