首页> 外文会议>第二届全国分子模拟与信息技术软件应用研讨会暨第四届创腾科技用户大会 >The Role of Electrostatic Interaction in Triggering the Unraveling of Stable Helix 1 in Normal Prion Protein. A Molecular Dynamics Simulation Investigation
【24h】

The Role of Electrostatic Interaction in Triggering the Unraveling of Stable Helix 1 in Normal Prion Protein. A Molecular Dynamics Simulation Investigation

机译:静电相互作用在触发正常Pri蛋白中稳定螺旋1解体中的作用。分子动力学模拟研究

获取原文

摘要

The conversion of normal prion protein (PrP~C) into scrapie isoform (PrP~(Sc)) is a key event in the pathogenesis of prion diseases. However, the conversion mechanism has given rise to much controversy. For instance, there is much debate on the behavior of helix 1 (H1) in the conversion. A series of experiments demonstrated that H1 in isolated state was very stable under a variety of conditions. But, other experiments indicated that helices 2 and 3 rather than H1 were retained in PrP~(Sc). In this paper, molecular dynamics (MD) simulation is employed to investigate the dynamic behavior of H1. It is revealed that although the helix 1 of Human PrP~C (HuPrP~C) is very stable in the isolated state, it becomes unstable when incorporated into native HuPrP~C, which likely results from the long-range electrostatic interaction between Asp147 and Arg208 located in the helices 1 and 3, respectively. This explanation is supported by experimental evaluation and MD simulation on D147N mutant of HuPrP~C that the mutant becomes a little more stable than the wild type HuPrP~C. This finding not only help to reconcile the existing debate on the role of helix 1 in the Prp~C → PrP~(Sc) transition, but also reveals a possible mechanism for triggering the PrP~C → PrP~(Sc) conversion.
机译:正常病毒蛋白(PrP〜C)转化为瘙痒病同工型(PrP〜(Sc))是病毒疾病发病机理中的关键事件。但是,转换机制引起了很多争议。例如,关于转换中的螺旋1(H1)行为的争论很多。一系列实验表明,处于分离状态的H1在各种条件下都非常稳定。但是,其他实验表明,螺旋形2和3而不是H1保留在PrP〜(Sc)中。在本文中,分子动力学(MD)模拟被用来研究H1的动力学行为。结果表明,尽管人类PrP〜C的螺旋1(HuPrP〜C)在分离状态下非常稳定,但掺入天然HuPrP〜C时却变得不稳定,这很可能是由于Asp147和Arg208分别位于螺旋1和3中。对HuPrP〜C的D147N突变体的实验评估和MD模拟支持了这种解释,即该突变体变得比野生型HuPrP〜C更稳定。这一发现不仅有助于调和关于螺旋1在Prp〜C→PrP〜(Sc)转变中作用的争论,而且揭示了触发PrP〜C→PrP〜(Sc)转化的可能机制。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号