Koehler S A, Powers T R
Division of Engineering and Applied Sciences, Harvard University, Cambridge, Massaschusetts 02138, USA.
Phys Rev Lett. 2000 Nov 27;85(22):4827-30. doi: 10.1103/PhysRevLett.85.4827.
Biological filaments such as DNA or bacterial flagella are typically curved in their natural states. To elucidate the interplay of viscous drag, twisting, and bending in the overdamped dynamics of such filaments, we compute the steady-state torsional stress and shape of a rotating rod with a kink. Drag deforms the rod, ultimately extending or folding it depending on the kink angle. For certain kink angles and kink locations, both states are possible at high rotation rates. The agreement between our macroscopic experiments and the theory is good, with no adjustable parameters.
诸如DNA或细菌鞭毛之类的生物细丝在其自然状态下通常是弯曲的。为了阐明粘性阻力、扭转和弯曲在这类细丝过阻尼动力学中的相互作用,我们计算了带有扭结的旋转杆的稳态扭转应力和形状。阻力使杆变形,最终根据扭结角度使其伸展或折叠。对于某些扭结角度和扭结位置,在高旋转速率下两种状态都是可能的。我们的宏观实验与理论之间的吻合度良好,且无需调整参数。