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动态微管的相反末端行为。

Opposite-end behaviour of dynamic microtubules.

作者信息

Martin S R, Schilstra M J, Bayley P M

机构信息

Division of Physical Biochemistry, National Institute for Medical Research, Mill Hill, London, U.K.

出版信息

Biochim Biophys Acta. 1991 Apr 9;1073(3):555-61. doi: 10.1016/0304-4165(91)90230-e.

Abstract

Microtubules are dynamic polar structures with different kinetic properties at the two ends. The inherent asymmetry of the microtubule lattice determines that the relationship between the addition reaction of tubulin-GTP and the associated hydrolysis of a tubulin-GTP on the polymer is different at the two ends of the microtubule. We present a unified treatment for both ends of the microtubule, using the principles of the Lateral Cap formulation for microtubule dynamic instability. This shows that the two ends can exhibit significantly different dynamic properties in terms of amplitudes and lifetimes of growth and shrinking, depending on the relative importance of longitudinal and lateral contacts in the coupling of tubulin-GTP hydrolysis. These predictions are readily amenable to experimental verification. This modelling suggests that fine details of the subunit-subunit interactions at the microtubule end can determine the characteristic differences in kinetic behaviour of the opposite ends of dynamic microtubules. Variation of these interactions would provide a potentially sensitive general mechanism for the control of such dynamics, both in vitro and in vivo.

摘要

微管是具有动态极性的结构,两端具有不同的动力学特性。微管晶格的固有不对称性决定了微管蛋白 - GTP的添加反应与聚合物上微管蛋白 - GTP相关水解之间的关系在微管两端是不同的。我们使用微管动态不稳定性的侧向帽公式原理,对微管两端进行统一处理。这表明,根据微管蛋白 - GTP水解偶联中纵向和横向接触的相对重要性,两端在生长和收缩的幅度及持续时间方面可表现出显著不同的动态特性。这些预测很容易通过实验验证。该模型表明,微管末端亚基 - 亚基相互作用的细微细节可决定动态微管相对两端动力学行为的特征差异。这些相互作用的变化将为体外和体内控制此类动力学提供一种潜在的敏感通用机制。

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