Manser E J, Bayley P M
Biochem J. 1987 Jan 1;241(1):105-10. doi: 10.1042/bj2410105.
The removal of tightly bound GDP from the exchangeable nucleotide-binding site of tubulin has been performed with alkaline phosphatase under conditions which essentially retain the assembly properties of the protein. When microtubule protein is treated with alkaline phosphatase, nucleotide is selectively removed from tubulin dimer rather than from MAP (microtubule-associated protein)-containing oligomeric species. Tubulin devoid of E-site (the exchangeable nucleotide-binding site of the tubulin dimer) nucleotide shows enhanced proteolytic susceptibility of the beta-subunit to thermolysin and decreased protein stability, consistent with nucleotide removal causing changes in protein tertiary structure. Pyrophosphate ion (3 mM) is able to promote formation of normal microtubules in the complete absence of GTP by incubation at 37 degrees C either with nucleotide-depleted microtubule protein or with nucleotide-depleted tubulin dimer to which MAPs have been added. The resulting microtubules contain up to 80% of tubulin lacking E-site nucleotide. In addition to its effects on nucleation, pyrophosphate competes weakly with GDP bound at the E-site. It is deduced that binding of pyrophosphate at a vacant E-site can promote microtubule assembly. The minimum structural requirement for ligands to induce tubulin assembly apparently involves charge neutralization at the E-site by bidentate ligation, which stabilizes protein domains in a favourable orientation for promoting the supramolecular protein-protein interactions involved in microtubule formation.
在基本保留蛋白质组装特性的条件下,已使用碱性磷酸酶从微管蛋白的可交换核苷酸结合位点去除紧密结合的GDP。当用碱性磷酸酶处理微管蛋白时,核苷酸是从微管蛋白二聚体中选择性去除的,而不是从含微管相关蛋白(MAP)的寡聚体中去除。缺乏E位点(微管蛋白二聚体的可交换核苷酸结合位点)核苷酸的微管蛋白对嗜热菌蛋白酶的β亚基蛋白水解敏感性增强,且蛋白质稳定性降低,这与核苷酸去除导致蛋白质三级结构变化一致。在完全没有GTP的情况下,通过在37℃孵育核苷酸耗尽的微管蛋白或添加了MAPs的核苷酸耗尽的微管蛋白二聚体,焦磷酸离子(3 mM)能够促进正常微管的形成。所得微管含有高达80%缺乏E位点核苷酸的微管蛋白。除了对成核的影响外,焦磷酸与结合在E位点的GDP竞争较弱。据推断,焦磷酸在空的E位点结合可促进微管组装。配体诱导微管蛋白组装的最低结构要求显然涉及通过双齿连接在E位点进行电荷中和,这使蛋白质结构域以有利于促进微管形成中涉及的超分子蛋白质-蛋白质相互作用的方向稳定。