首页> 外文期刊>Proceedings of the National Academy of Sciences of the United States of America >Unfolding and translocation pathway of substrate protein controlled by structure in repetitive allosteric cycles of the CIpY ATPase
【24h】

Unfolding and translocation pathway of substrate protein controlled by structure in repetitive allosteric cycles of the CIpY ATPase

机译:CIpY ATPase重复变构循环中受结构控制的底物蛋白的展开和易位途径

获取原文
获取原文并翻译 | 示例
       

摘要

Clp ATPases are ring-shaped AAA+ motors in the degradation pathway that perform critical actions of unfolding and translocating substrate proteins (SPs) through narrow pores to deliver them to peptidase components. These actions are effected by conserved diaphragm-forming loops found in the central channel of the Clp ATPase hexamer. Conformational changes, that take place in the course of repetitive ATP-driven cycles, result in mechanical forces applied by the central channel loops onto the SP. We use coarse-grained simulations to elucidate allostery-driven mechanisms of unfolding and translocation of a tagged four-helix bundle protein by the CIpY ATPase. Unfolding is initiated at the tagged C-terminal region via an obligatory intermediate. The resulting nonnative conformation is competent for translocation, which proceeds on a different time scale than unfolding and involves sharp stepped transitions. Completion of the translocation process requires assistance from the CIpQ peptidase. These mechanisms contrast nonal-losteric mechanical unfolding of the SP. In atomic force microscopy experiments, multiple unfolding pathways are available and large mechanical forces are required to unravel the SP relative to those exerted by the central channel loops of CIpY. SP threading through a nonallosteric CIpY nanopore involves simultaneous unfolding and translocation effected by strong pulling forces.
机译:Clp ATPases是降解途径中的环形AAA +马达,其执行的关键作用是通过狭窄的孔将底物蛋白(SP)展开和转运,以将其传递至肽酶组分。这些作用受Clp ATPase六聚体中央通道中发现的保守的成膜环的影响。在重复的ATP驱动的循环过程中发生的构象变化会导致中央通道环路将机械力施加到SP上。我们使用粗粒模拟来阐明由变位驱动的机制的CIpY ATPase的标记的四螺旋束蛋白的展开和易位。经由必需的中间体在标记的C-末端区域开始展开。所产生的非天然构象可用于易位,易位的发生时间与展开不同,并且涉及急剧的阶梯式跃迁。易位过程的完成需要CIpQ肽酶的协助。这些机制对比了SP的非错位机械展开。在原子力显微镜实验中,相对于CIpY中央通道环所施加的SP,有多种展开路径可用,并且需要较大的机械力才能解开SP。 SP穿过非变构CIpY纳米孔的过程涉及同时展开和易受强大拉力的影响。

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