Department of Biomolecular Systems, FOM institute AMOLF, Science Park 104, 1098 XG Amsterdam, The Netherlands.
Phys Biol. 2011 Oct;8(5):056002. doi: 10.1088/1478-3975/8/5/056002. Epub 2011 Jul 26.
The highly aligned cortical microtubule array of interphase plant cells is a key regulator of anisotropic cell expansion. Recent computational and analytical work has shown that the non-equilibrium self-organization of this structure can be understood on the basis of experimentally observed collisional interactions between dynamic microtubules attached to the plasma membrane. Most of these approaches assumed that new microtubules are homogeneously and isotropically nucleated on the cortical surface. Experimental evidence, however, shows that nucleation mostly occurs from other microtubules and under specific relative angles. Here, we investigate the impact of directed microtubule-bound nucleations on the alignment process using computer simulations. The results show that microtubule-bound nucleations can increase the degree of alignment achieved, decrease the timescale of the ordering process and widen the regime of dynamic parameters for which the system can self-organize. We establish that the major determinant of this effect is the degree of co-alignment of the nucleations with the parent microtubule. The specific role of sideways branching nucleations appears to allow stronger alignment while maintaining a measure of overall spatial homogeneity. Finally, we investigate the suggestion that observed persistent rotation of microtubule domains can be explained through a handedness bias in microtubule-bound nucleations, showing that this is possible only for an extreme bias and over a limited range of parameters.
植物细胞间期中高度对齐的皮层微管阵列是各向异性细胞扩展的关键调节因子。最近的计算和分析工作表明,基于对与质膜相连的动态微管之间观察到的碰撞相互作用的实验观察,可以理解这种结构的非平衡自组织。这些方法大多假设新的微管均匀且各向同性地在皮层表面上成核。然而,实验证据表明,成核主要发生在其他微管上,并具有特定的相对角度。在这里,我们使用计算机模拟研究了定向微管结合成核对排列过程的影响。结果表明,微管结合成核可以增加达到的对齐程度,缩短有序化过程的时间尺度,并拓宽系统可以自组织的动态参数范围。我们确定,这种效应的主要决定因素是成核与母微管的共对齐程度。侧向分支成核的特定作用似乎允许更强的对齐,同时保持整体空间均匀性的度量。最后,我们研究了这样一种观点,即观察到的微管域的持续旋转可以通过微管结合成核中的手性偏差来解释,结果表明,只有在手性偏差极端且参数范围有限的情况下才有可能。