Department of Physics, Brandeis University, 415 South Street, Waltham, MA 02454, USA.
Science. 2011 Jul 22;333(6041):456-9. doi: 10.1126/science.1203963.
The mechanism that drives the regular beating of individual cilia and flagella, as well as dense ciliary fields, remains unclear. We describe a minimal model system, composed of microtubules and molecular motors, which self-assemble into active bundles exhibiting beating patterns reminiscent of those found in eukaryotic cilia and flagella. These observations suggest that hundreds of molecular motors, acting within an elastic microtubule bundle, spontaneously synchronize their activity to generate large-scale oscillations. Furthermore, we also demonstrate that densely packed, actively bending bundles spontaneously synchronize their beating patterns to produce collective behavior similar to metachronal waves observed in ciliary fields. The simple in vitro system described here could provide insights into beating of isolated eukaryotic cilia and flagella, as well as their synchronization in dense ciliary fields.
驱动单个纤毛和鞭毛以及密集纤毛场有规律运动的机制仍不清楚。我们描述了一个最小的模型系统,由微管和分子马达组成,它们自组装成具有类似于真核纤毛和鞭毛中发现的运动模式的活性束。这些观察结果表明,数百个分子马达在弹性微管束内作用,自发地同步其活动以产生大规模的振荡。此外,我们还证明了密集排列的、主动弯曲的束会自发地同步其运动模式,从而产生类似于在纤毛场中观察到的同步波的集体行为。这里描述的简单的体外系统可以深入了解分离的真核纤毛和鞭毛的运动,以及它们在密集的纤毛场中的同步。