Carlier M F, Didry D, Melki R, Chabre M, Pantaloni D
Laboratoire d'Enzymologie, CNRS, 91198 Gif-sur-Yvette, France.
Biochemistry. 1988 May 17;27(10):3555-9. doi: 10.1021/bi00410a005.
In order to elucidate how the elementary reactions of GTP cleavage and subsequent inorganic phosphate (Pi) release, which accompany microtubule assembly, regulate microtubule dynamics, the effect of Pi and of its structural analogues AlF4- and BeF3- on the stability of GDP-microtubules has been investigated. Inorganic phosphate binds to microtubules with a low affinity (KD = 25 mM) and slows down the rate of GDP-subunit dissociation by about 2 orders of magnitude. AlF4- and BeF3- exhibit phosphate-like effects with 1000-fold higher affinity. Evidence has been obtained for direct binding of BeF3- to microtubules with a stoichiometry of 1 mol of BeF3- per mole of GDP-subunit and an equilibrium dissociation constant of 12-15 microM. AlF4- and Pi compete for this site. Phosphate analogues abolish oscillatory polymerization kinetics and slow down microtubule turnover at steady state. In view of these results, we propose that Pi and its structural analogues bind to the site of the gamma-phosphate of GTP in the E site and reconstitute a GDP-Pi-microtubule, from which tubulin subunits dissociate very slowly. We therefore understand that, following GTP cleavage on microtubules, Pi release in the medium is accompanied by a structural change resulting in a large destabilization of the polymer. A cap of slowly dissociating GDP-Pi-subunits prevents depolymerization of the microtubule GDP-core at steady state. The similarity with the actin system [Carlier, M.-F., & Pantaloni, D. (1988) J. Biol. Chem. 263, 817-825] is underlined.
为了阐明伴随微管组装的GTP裂解及随后无机磷酸(Pi)释放的基本反应如何调节微管动力学,研究了Pi及其结构类似物AlF4-和BeF3-对GDP-微管稳定性的影响。无机磷酸以低亲和力(KD = 25 mM)与微管结合,并使GDP-亚基解离速率减慢约2个数量级。AlF4-和BeF3-表现出类似磷酸的作用,亲和力高1000倍。已获得证据表明BeF3-以化学计量比每摩尔GDP-亚基1摩尔BeF3-直接与微管结合,平衡解离常数为12 - 15 microM。AlF4-和Pi竞争该位点。磷酸类似物消除振荡聚合动力学并减慢稳态下的微管周转。鉴于这些结果,我们提出Pi及其结构类似物与E位点GTP的γ-磷酸位点结合,并重构GDP-Pi-微管,微管蛋白亚基从该微管中解离非常缓慢。因此我们明白,微管上的GTP裂解后,介质中Pi的释放伴随着结构变化,导致聚合物大幅不稳定。在稳态下,由缓慢解离的GDP-Pi-亚基组成的帽阻止微管GDP核心的解聚。强调了与肌动蛋白系统的相似性[卡里尔,M.-F.,& 潘塔洛尼,D.(1988年)《生物化学杂志》263,817 - 825]。