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两项竞争性模型对微管力学的比较研究表明,替代微管蛋白侧相互作用具有功能作用。

Comparative studies of microtubule mechanics with two competing models suggest functional roles of alternative tubulin lateral interactions.

机构信息

Department of Biological Sciences, Virginia Tech, Blacksburg, Virginia, USA.

出版信息

Biophys J. 2012 Jun 20;102(12):2687-96. doi: 10.1016/j.bpj.2012.05.003. Epub 2012 Jun 19.

Abstract

The dynamic assembly and disassembly of microtubules and the mechanical properties of these polymers are essential for many key cellular processes. Mathematical and computational modeling, especially coupled mechanochemical modeling, has contributed significantly to our understanding of microtubule dynamics. However, critical discrepancies exist between experimental observations and modeling results that need to be resolved before further progress toward a complete model can be made. Open sheet structures ranging in length from several hundred nanometers to one micron have often been observed at the growing ends of microtubules in in vitro studies. Existing modeling studies predict these sheet structures to be short and rare intermediates of microtubule disassembly rather than important components of the assembly process. Atomic force microscopy (AFM) studies also reveal interesting step-like gaps of the force-indentation curve that cannot yet be explained by existing theoretical models. We have carried out computational studies to compare the mechanical properties of two alternative models: a more conventional model where tubulin dimers are added directly into a microtubule lattice, and one that considers an additional type of tubulin lateral interaction proposed to exist in intermediate sheet structures during the microtubule assembly process. The first model involves a single type of lateral interactions between tubulin subunits, whereas the latter considers a second type that can convert to the canonical lateral contact during microtubule closure into a cylinder. Our analysis shows that only the second model can reproduce the AFM results over a broad parameter range. We propose additional studies using different sizes of AFM tips that would allow to unambiguously distinguish the relative validity of the two models.

摘要

微管的动态组装和拆卸以及这些聚合物的力学性能对许多关键的细胞过程至关重要。数学和计算建模,特别是耦合的机械化学建模,为我们理解微管动力学做出了重大贡献。然而,实验观察和建模结果之间存在着显著的差异,需要在进一步推进完整模型之前加以解决。在体外研究中,经常在微管的生长端观察到长度从几百纳米到一微米的开放片状结构。现有的建模研究预测这些片状结构是微管解组装的短而罕见的中间产物,而不是组装过程的重要组成部分。原子力显微镜(AFM)研究还揭示了有趣的力-压痕曲线阶跃状间隙,这仍然不能用现有的理论模型来解释。我们进行了计算研究,比较了两种替代模型的力学性能:一种是更传统的模型,其中微管蛋白二聚体直接添加到微管晶格中,另一种是考虑在微管组装过程中中间片状结构中存在的另一种微管蛋白侧向相互作用的模型。第一种模型涉及微管蛋白亚基之间的单一类型的侧向相互作用,而后者考虑了第二种类型,该类型在微管闭合成圆柱时可以转换为典型的侧向接触。我们的分析表明,只有第二种模型可以在广泛的参数范围内重现 AFM 结果。我们建议使用不同大小的 AFM 探针进行进一步研究,这将能够明确区分两种模型的相对有效性。

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