Díaz J F, Pantos E, Bordas J, Andreu J M
Centro de Investigaciones Biológicas, C.S.I.C., Madrid, Spain.
J Mol Biol. 1994 Apr 29;238(2):214-25. doi: 10.1006/jmbi.1994.1282.
GDP liganded tubulin, which is inactive in microtubule assembly, polymerizes into rings more readily than the active GTP liganded protein. The structure of double rings made of highly purified GDP-tubulin has been characterized to 3 nm resolution with synchrotron X-ray solution scattering. The scattering profile has characteristic maxima due to closely packed double rings of 38 nm mean diameter, with a 5.5 nm mean spacing between the rings, and a 4.2 nm centre-to-centre spacing between non-globular tubulin monomers within both rings. There are probably 24 and 32 monomers in the inner and outer ring, respectively, and the double ring population is more than 75% homogeneous in size. Comparison of this double ring structure to the lattice of tubulin molecules in microtubules indicates that the tubulin rings are equivalent to pairs of protofilament segments curved tangentially to the microtubule surface, with bending angles of 30 degrees and 22.5 degrees per tubulin alpha beta dimer. When the rings are modelled employing the same non-globular tubulin monomer as in microtubules, the best computer fitted scattering profiles correspond to monomer orientations equivalent to two microtubule protofilaments coiled sideways, with same or opposite polarity. Rings constitute the equilibrium assembly state of GDP-tubulin, which is tensioned inside microtubules after GTP hydrolysis, causing their functional instability. In analogy with other nucleotide binding proteins, the inactive/active structural switch of tubulin is induced by the binding of the gamma phosphate and a coordinated Mg ion. It should involve domain rearrangements which cancel the bending of the tubulin dimer in the ring structure.
与微管组装中无活性的GDP结合微管蛋白相比,活性GTP结合蛋白更容易聚合成环。利用同步加速器X射线溶液散射技术,已将由高度纯化的GDP-微管蛋白制成的双环结构解析至3纳米分辨率。由于平均直径为38纳米的紧密堆积双环,散射图谱具有特征性最大值,环之间的平均间距为5.5纳米,两个环内非球状微管蛋白单体之间的中心间距为4.2纳米。内环和外环可能分别有24个和32个单体,双环群体在尺寸上的均匀性超过75%。将这种双环结构与微管中微管蛋白分子的晶格进行比较表明,微管蛋白环相当于与微管表面相切弯曲的原纤维片段对,每个微管蛋白αβ二聚体的弯曲角度分别为30度和22.5度。当使用与微管中相同的非球状微管蛋白单体对环进行建模时,最佳的计算机拟合散射图谱对应于相当于两个侧向盘绕的微管原纤维的单体取向,具有相同或相反的极性。环构成了GDP-微管蛋白的平衡组装状态,在GTP水解后,其在微管内部受到张力,导致其功能不稳定。与其他核苷酸结合蛋白类似,微管蛋白的无活性/活性结构转换是由γ磷酸和配位镁离子的结合诱导的。它应该涉及结构域重排,从而消除环结构中微管蛋白二聚体的弯曲。