...
首页> 外文期刊>Scientific reports. >Single Molecule Investigation of Kinesin-1 Motility Using Engineered Microtubule Defects
【24h】

Single Molecule Investigation of Kinesin-1 Motility Using Engineered Microtubule Defects

机译:使用工程化微管缺损的Kinesin-1运动的单分子调查

获取原文

摘要

The structure of the microtubule is tightly regulated in cells via a number of microtubule associated proteins and enzymes. Microtubules accumulate structural defects during polymerization, and defect size can further increase under mechanical stresses. Intriguingly, microtubule defects have been shown to be targeted for removal via severing enzymes or self-repair. The cell’s control in defect removal suggests that defects can impact microtubule-based processes, including molecular motor-based intracellular transport. We previously demonstrated that microtubule defects influence cargo transport by multiple kinesin motors. However, mechanistic investigations of the observed effects remained challenging, since defects occur randomly during polymerization and are not directly observable in current motility assays. To overcome this challenge, we used end-to-end annealing to generate defects that are directly observable using standard epi-fluorescence microscopy. We demonstrate that the annealed sites recapitulate the effects of polymerization-derived defects on multiple-motor transport, and thus represent a simple and appropriate model for naturally-occurring defects. We found that single kinesins undergo premature dissociation, but not preferential pausing, at the annealed sites. Our findings provide the first mechanistic insight to how defects impact kinesin-based transport. Preferential dissociation on the single-molecule level has the potential to impair cargo delivery at locations of microtubule defect sites in vivo.
机译:微管的结构通过多种微管相关蛋白质和酶在细胞中紧密调节。微管在聚合过程中积聚结构缺陷,并且在机械应力下可以进一步增加缺陷尺寸。有趣的是,已经显示微管缺陷旨在通过切断酶或自修复来靶向去除。细胞对缺陷去除的控制表明,缺陷会影响基于微管的方法,包括分子电机的细胞内转运。我们之前展示了微管缺陷通过多个kinesin电机影响货物运输。然而,观察到的效果的机械研究仍然挑战,因为在聚合过程中随机发生缺陷,并且在目前的运动测定中不可观察到。为了克服这一挑战,我们使用端到端退火以产生使用标准EPI荧光显微镜直接可观察到的缺陷。我们证明退火的部位概括了聚合衍生缺陷对多电动机运输的影响,因此代表了一种用于天然存在的缺陷的简单且适当的模型。我们发现单一的kinesins在退火的地点进行过早解离,但不优先暂停。我们的调查结果提供了对缺陷影响Kinesin的运输方式的第一部机械洞察。对单分子水平的优先解离有可能在体内微管缺损部位的位置损害货物递送。

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