Department of Mechanical and Aerospace Engineering, University of California San Diego, 9500 Gilman Drive, La Jolla, California 92093-0411, USA.
Phys Rev Lett. 2012 Jul 20;109(3):038101. doi: 10.1103/PhysRevLett.109.038101. Epub 2012 Jul 17.
In a variety of biological processes, eukaryotic cells use cilia to transport flow. Although cilia have a remarkably conserved internal molecular structure, experimental observations report very diverse kinematics. To address this diversity, we determine numerically the kinematics and energetics of the most efficient cilium. Specifically, we compute the time-periodic deformation of a wall-bound elastic filament leading to transport of a surrounding fluid at minimum energetic cost, where the cost is taken to be the positive work done by all internal molecular motors. The optimal kinematics are found to strongly depend on the cilium bending rigidity through a single dimensionless number, the Sperm number, and closely resemble the two-stroke ciliary beating pattern observed experimentally.
在各种生物过程中,真核细胞利用纤毛来进行流动运输。尽管纤毛具有非常保守的内部分子结构,但实验观察报告的运动形态却非常多样。为了解决这种多样性,我们通过数值方法确定了最有效的纤毛的运动形态和能量学。具体来说,我们计算了一个壁面束缚弹性细丝的周期性变形,导致周围流体的最小能量运输,其中成本被视为所有内部分子马达所做的正功。最优的运动形态被发现强烈依赖于纤毛的弯曲刚度,通过一个单一的无量纲数,即精子数,并且非常类似于实验中观察到的两拍纤毛拍打模式。