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Effects of confinement and macromolecular crowding on protein stability and protein folding dynamics.

机译:限制和大分子拥挤对蛋白质稳定性和蛋白质折叠动力学的影响。

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摘要

In cells, proteins perform specific tasks in crowded and confined environments; these environments influence their stability and folding dynamics. To investigate these effects of confinement and macromolecular crowding on proteins based on statistical mechanical methods, we have carried out numerical simulations using minimalist models (2-Dimensional HP lattice, Monte Carlo, Brownian dynamics) and 3-Dimensional off-lattice polymer models. For the confinement effects, our results, based on heat capacity calculations, show that the folding temperature increases when box size decreases, indicating that the protein is stabilized. These results are consistent with the experimental observations obtained in Dr. Wei's group. We have also investigated the effects of confinement on the kinetics of refolding and unfolding as a function of temperature and box size. The unfolding time increases as box size shrinks, however, the folding time behaves in a more complicated way.; To investigate the effects of macromolecular crowding, Brownian motions of crowders are included inside a virtual box with periodic boundary conditions. Besides temperature, the concentration of crowders and crowder size are also varied in our simulations. Simulated results indicate that folding temperature increases with the crowder concentration; the protein is thus stabilized by the presence of crowders. However, this increase is not as large as that observed in the case of confinement. Our dynamic studies show that both folding and unfolding times increase with the concentration of crowders in such a way that the equilibrium is shifted towards the folded state. Furthermore, our simulations show that the activation energy of unfolding remains approximately constant as the number of crowders increases.; Based on the concept of depletion force we have also calculated the enhancement of the mechanical force required to unfold ubiquitin molecules in a solution of dextran, the crowding agent. We have employed a 3-D polymer model using the pivot algorithm to calculate the depletion zone and have applied the scaled particle theory for the osmotic pressure of the crowders. Our results are in reasonable agreement with recent measurements carried out in Dr. Yang's laboratory.
机译:在细胞中,蛋白质在拥挤和密闭的环境中执行特定的任务。这些环境会影响其稳定性和折叠动力学。为了研究基于统计力学方法的限制和大分子拥挤对蛋白质的这些影响,我们使用极简模型(二维HP晶格,蒙特卡洛,布朗动力学)和三维离格聚合物模型进行了数值模拟。对于限制作用,我们基于热容量计算的结果表明,当包装盒尺寸减小时,折叠温度会升高,表明蛋白质是稳定的。这些结果与魏博士研究组的实验观察结果一致。我们还研究了封闭对重新折叠和展开动力学的影响,该动力学是温度和盒子尺寸的函数。展开时间随着盒子尺寸的缩小而增加,但是,折叠时间表现得更加复杂。为了研究大分子拥挤的影响,拥挤器的布朗运动包含在具有周期性边界条件的虚拟盒子内。除了温度以外,在我们的模拟中拥挤者的浓度和拥挤者的大小也有所不同。模拟结果表明,折叠温度随拥挤物浓度的增加而增加。因此,通过拥挤剂可以稳定蛋白质。但是,这种增加不像在封闭情况下观察到的那样大。我们的动力学研究表明,折叠和展开时间都随着拥挤者的集中而增加,从而使平衡向折叠状态移动。此外,我们的仿真表明,随着拥挤器数量的增加,展开的激活能量大致保持恒定。基于耗尽力的概念,我们还计算了在拥挤剂右旋糖酐溶液中展开泛素分子所需的机械力的增强。我们已经使用3-D聚合物模型使用枢轴算法来计算耗尽区,并已将定标粒子理论应用于拥挤剂的渗透压。我们的结果与杨博士实验室最近进行的测量结果合理地吻合。

著录项

  • 作者

    Ping, Guanghui.;

  • 作者单位

    Drexel University.;

  • 授予单位 Drexel University.;
  • 学科 Biophysics General.
  • 学位 Ph.D.
  • 年度 2005
  • 页码 114 p.
  • 总页数 114
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 生物物理学;
  • 关键词

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