...
首页> 外文期刊>The European physical journal, E. Soft matter >Motor-driven bacterial flagella and buckling instabilities
【24h】

Motor-driven bacterial flagella and buckling instabilities

机译:马达驱动细菌鞭毛和屈曲不稳定性

获取原文
获取原文并翻译 | 示例
           

摘要

Many types of bacteria swim by rotating a bundle of helical filaments also called flagella. Each filament is driven by a rotary motor and a very flexible hook transmits the motor torque to the filament.We model it by discretizing Kirchhoff's elastic-rod theory and develop a coarse-grained approach for driving the helical filament by a motor torque. A rotating flagellum generates a thrust force, which pushes the cell body forward and which increases with the motor torque. We fix the rotating flagellum in space and show that it buckles under the thrust force at a critical motor torque. Buckling becomes visible as a supercritical Hopf bifurcation in the thrust force. A second buckling transition occurs at an even higher motor torque. We attach the flagellum to a spherical cell body and also observe the first buckling transition during locomotion. By changing the size of the cell body, we vary the necessary thrust force and thereby obtain a characteristic relation between the critical thrust force and motor torque. We present a elaborate analytical model for the buckling transition based on a helical rod which quantitatively reproduces the critical force-torque relation. Real values for motor torque, cell body size, and the geometry of the helical filament suggest that buckling should occur in single bacterial flagella. We also find that the orientation of pulling flagella along the driving torque is not stable and comment on the biological relevance for marine bacteria.
机译:许多类型的细菌通过旋转一束也称为鞭毛的螺旋细丝来游泳。每根灯丝由旋转电机驱动,非常灵活的钩将电机扭矩传递到灯丝上,我们通过离散基尔霍夫的弹性杆理论对其进行建模,并开发了一种粗粒度的方法来通过电机扭矩来驱动螺旋灯丝。旋转的鞭毛产生推力,该推力将细胞体向前推动,并随着电动机转矩而增加。我们将旋转的鞭毛固定在空间中,并显示在临界电动机转矩下,其在推力作用下弯曲。作为推力中的超临界霍普夫分叉,屈曲变得可见。在更高的电机转矩下会发生第二次屈曲过渡。我们将鞭毛附着到球形细胞体上,并观察运动过程中的第一个屈曲过渡。通过改变电池主体的尺寸,我们可以改变所需的推力,从而获得临界推力和电动机转矩之间的特性关系。我们提出了一种基于螺旋杆的屈曲过渡的精细分析模型,该模型定量地再现了临界力-扭矩关系。电机扭矩,细胞体大小和螺旋状细丝的几何形状的实际值表明,应在单个细菌鞭毛中发生屈曲。我们还发现沿驱动扭矩拉动鞭毛的方向不稳定,并评论了与海洋细菌的生物学相关性。

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