Martin S R, Butler F M, Clark D C, Zhou J M, Bayley P M
Biochim Biophys Acta. 1987 Jul 24;914(1):96-100. doi: 10.1016/0167-4838(87)90166-x.
Much interest has currently been attached to the length distribution of microtubules polymerized in vitro and the related question of their possible 'dynamic instability'. Fundamental to this question is the mechanism of microtubule nucleation, which controls the rates of assembly and disassembly of microtubule protein in vitro. These kinetics are affected by a number of factors, including both the guanine nucleotides, GTP and GDP, and magnesium ion. Mg2+ exerts complex effects, as indicated by the existence of an optimal Mg2+ concentration for the maximum assembly rate of microtubule protein, and we investigate these effects in this report. At [Mg2+] greater than 0.5 mM, the characteristic lag-phase is substantially increased and the rate of assembly is greatly reduced without affecting the critical concentration significantly. We show that increasing [Mg2+] has two effects on the assembly process: nucleation is less efficient and the intrinsic rate constant for the elongation reaction is reduced. Lowering [Mg2+] (less than 0.5 mM) also inhibits nucleation. These effects of varying [Mg2+] can be explained predominantly in terms of enhanced stability of the microtubule-associated protein-containing oligomeric species present in the microtubule protein preparation. [Mg2+] is thus found to be a further important factor in microtubule nucleation, and hence, in determining length distributions in assembling microtubules.
目前,人们对体外聚合微管的长度分布及其可能的“动态不稳定性”这一相关问题极为关注。该问题的核心是微管成核机制,它控制着体外微管蛋白的组装和解聚速率。这些动力学受多种因素影响,包括鸟嘌呤核苷酸GTP和GDP以及镁离子。Mg2+具有复杂的作用,如存在一个使微管蛋白最大组装速率达到最优的Mg2+浓度所示,我们在本报告中研究了这些作用。当[Mg2+]大于0.5 mM时,特征性的延迟期显著增加,组装速率大幅降低,而对临界浓度没有显著影响。我们表明,增加[Mg2+]对组装过程有两个影响:成核效率降低,伸长反应的固有速率常数减小。降低[Mg2+](小于0.5 mM)也会抑制成核。[Mg2+]变化产生的这些影响主要可以用微管蛋白制剂中存在的含微管相关蛋白的寡聚体物种稳定性增强来解释。因此,发现[Mg2+]是微管成核的另一个重要因素,进而也是决定组装微管长度分布的重要因素。