Farrell K W, Himes R H, Jordan M A, Wilson L
J Biol Chem. 1983 Dec 10;258(23):14148-56.
We have examined the dilution-induced in vitro disassembly kinetics of bovine brain microtubules, initially at steady state, using a wider range of dilutions (2-100-fold) than previously employed. In contrast to earlier results, as well as to the simple nucleation-condensation model for microtubule formation, the initial rate of dimer loss from microtubule ends was not a linear function of the initial concentration of unpolymerized tubulin. Over a 2-20-fold dilution range, plots of the initial rate of dimer loss versus the initial unpolymerized tubulin concentration were approximately linear. However, at greater dilutions, rates of microtubule depolymerization increased nonlinearly. For example, between a 10-fold dilution and a 100-fold dilution, the initial rate of dimer loss for microtubule-associated protein-containing microtubules increased by 300%, rather than a maximum of 11% expected on the basis of a linear rate plot. The nonlinear response was observed for dimer loss from opposite microtubule ends separately and with microtubules containing and lacking associated proteins. Qualitatively similar results were obtained using a wide range of experimental protocols, from which we can reasonably exclude methodological artifact as a basis for the data. We can also reasonably exclude the dissociation of the high molecular weight microtubule-associated proteins 1 and 2 from the microtubules as an explanation for the nonlinearity of the rate plots. The nonlinearity of the rate plots indicates that kinetic constants obtained under nonsteady state conditions of extreme microtubule dilution may not describe the steady state condition accurately.
我们使用了比以往更广泛的稀释范围(2至100倍),研究了最初处于稳态的牛脑微管在稀释诱导下的体外解聚动力学。与早期结果以及微管形成的简单成核-凝聚模型不同,微管末端二聚体损失的初始速率并非未聚合微管蛋白初始浓度的线性函数。在2至20倍的稀释范围内,二聚体损失初始速率与初始未聚合微管蛋白浓度的关系图大致呈线性。然而,在更大的稀释度下,微管解聚速率呈非线性增加。例如,在10倍稀释至100倍稀释之间,含微管相关蛋白的微管二聚体损失初始速率增加了300%,而不是根据线性速率图预期的最多11%。分别从微管相对末端以及含和不含相关蛋白的微管中观察到二聚体损失的非线性响应。使用多种实验方案获得了定性相似的结果,从中我们可以合理排除方法假象作为数据的基础。我们也可以合理排除高分子量微管相关蛋白1和2从微管上解离作为速率图非线性的解释。速率图的非线性表明,在微管极端稀释的非稳态条件下获得的动力学常数可能无法准确描述稳态条件。