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Active cage mechanism of chaperonin-assisted protein folding demonstrated at single-molecule level

机译:单分子水平证明了伴侣素辅助蛋白折叠的活性笼机制

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摘要

The cylindrical chaperonin GroEL and its lid-shaped cofactor GroES of Escherichia coli have an essential role in assisting protein folding by transiently encapsulating non-native substrate in an ATP-regulated mechanism. It remains controversial whether the chaperonin system functions solely as an infinite dilution chamber, preventing off-pathway aggregation, or actively enhances folding kinetics by modulating the folding energy landscape. Here we developed single-molecule approaches to distinguish between passive and active chaperonin mechanisms. Using low protein concentrations (100 pM) to exclude aggregation, we measured the spontaneous and GroEL/ES-assisted folding of double-mutant maltose binding protein (DM-MBP) by single-pair fluorescence resonance energy transfer and fluorescence correlation spectroscopy. We find that GroEL/ES accelerates folding of DM-MBP up to 8-fold over the spontaneous folding rate. Accelerated folding is achieved by encapsulation of folding intermediate in the GroEL/ES cage, independent of repetitive cycles of protein binding and release from GroEL. Moreover, photoinduced electron transfer experiments provided direct physical evidence that the confining environment of the chaperonin restricts polypeptide chain dynamics. This effect is mediated by the net-negatively charged wall of the GroEL/ES cavity, as shown using the GroEL mutant EL(KKK2) in which the net-negative charge is removed. EL(KKK2)/ES functions as a passive cage in which folding occurs at the slow spontaneous rate. Taken together our findings suggest that protein encapsulation can accelerate folding by entropically destabilizing folding intermediates, in strong support of an active chaperonin mechanism in the folding of some proteins. Accelerated folding is biologically significant as it adjusts folding rates relative to the speed of protein synthesis.
机译:圆柱形伴奏锥形腹股沟和其盖形辅因子的大肠杆菌的胶合体具有重要作用,在通过在ATP调节机构中通过瞬时包封非天然基质辅助蛋白质折叠。它仍然存在涉比,伴侣素系统是否仅用为无限稀释室,防止途径聚集,或通过调制折叠能量景观来积极增强折叠动力学。在这里,我们开发了单分子方法,以区分被动和活性伴侣素机制。使用低蛋白质浓度(100μl)排除聚集,我们通过单对荧光共振能量转移和荧光相关光谱测量双突变体麦芽糖结合蛋白(DM-MBP)的自发性和腹股沟/ ES辅助折叠。我们发现Groel / ES通过自发折叠速率加速DM-MBP的DM-MBP折叠折叠。通过在腹圈/ ES笼中封装折叠中间体来实现加速折叠,与蛋白质结合和从腹圈释放的重复循环无关。此外,光抑制电子传递实验提供了直接的物理证据,即伴侣素的限制环境限制了多肽链动态。这种效果由腹圈/ ES腔的净负电荷壁介导,如使用腹股沟突变体EL(KKK2)所示,其中除去净负电荷。 EL(KKK2)/ ES用作被动笼,其中折叠发生在缓慢的自发率。我们的研究结果表明,蛋白质包封可以通过熵稳定的折叠中间体加速折叠,在一些蛋白质的折叠中的活性伴侣素机制的强载体中。加速折叠在生物学上是显着的,因为它调整相对于蛋白质合成速度的折叠速率。

著录项

  • 来源
    《Journal of Molecular Biology》 |2014年第15期|共16页
  • 作者单位

    Department of Cellular Biochemistry Max Planck Institute of Biochemistry Am Klopferspitz 18;

    Department of Cellular Biochemistry Max Planck Institute of Biochemistry Am Klopferspitz 18;

    Department of Cellular Biochemistry Max Planck Institute of Biochemistry Am Klopferspitz 18;

    Department of Cellular Biochemistry Max Planck Institute of Biochemistry Am Klopferspitz 18;

    Department of Cellular Biochemistry Max Planck Institute of Biochemistry Am Klopferspitz 18;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 分子生物学;
  • 关键词

    chaperonins; DM-MBP; GroEL; GroES; single-molecule spectroscopy;

    机译:伴侣蛋白;DM-MBP;GROEL;GROES;单分子光谱;

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