Cochran Jared C, Gatial Joseph E, Kapoor Tarun M, Gilbert Susan P
Department of Biological Sciences, University of Pittsburgh, Pittsburgh, Pennsylvania 15260, USA.
J Biol Chem. 2005 Apr 1;280(13):12658-67. doi: 10.1074/jbc.M413140200. Epub 2005 Jan 23.
Monastrol is a small, cell-permeable molecule that arrests cells in mitosis by specifically inhibiting Eg5, a member of the Kinesin-5 family. We have used steady-state and presteady-state kinetics as well as equilibrium binding approaches to define the mechanistic basis of S-monastrol inhibition of monomeric human Eg5/KSP. In the absence of microtubules (Mts), the basal ATPase activity is inhibited through slowed product release. In the presence of microtubules, the ATPase activity is also reduced with weakened binding of Eg5 to microtubules during steady-state ATP turnover. Monastrol-treated Eg5 also shows a decreased relative affinity for microtubules under equilibrium conditions. The Mt.Eg5 presteady-state kinetics of ATP binding and the subsequent ATP-dependent isomerization are unaffected during the first ATP turnover. However, monastrol appears to stabilize a conformation that allows for reversals at the ATP hydrolysis step. Monastrol promotes a dramatic decrease in the observed rate of Eg5 association with microtubules, and ADP release is slowed without trapping the Mt.Eg5.ADP intermediate. We propose that S-monastrol binding to Eg5 induces a stable conformational change in the motor domain that favors ATP re-synthesis after ATP hydrolysis. The aberrant interactions with the microtubule and the reversals at the ATP hydrolysis step alter the ability of Eg5 to generate force, thereby yielding a nonproductive Mt.Eg5 complex that cannot establish or maintain the bipolar spindle.
莫那可林是一种小分子、可透过细胞的分子,它通过特异性抑制驱动蛋白-5家族成员Eg5,使细胞停滞在有丝分裂期。我们运用稳态和前稳态动力学以及平衡结合方法,来确定S-莫那可林抑制单体人Eg5/KSP的作用机制基础。在没有微管的情况下,基础ATP酶活性因产物释放减缓而受到抑制。在有微管存在时,在稳态ATP周转过程中,ATP酶活性也会降低,同时Eg5与微管的结合减弱。在平衡条件下,经莫那可林处理的Eg5对微管的相对亲和力也降低。在第一次ATP周转过程中,微管-Eg5的ATP结合前稳态动力学以及随后的ATP依赖性异构化不受影响。然而,莫那可林似乎稳定了一种构象,这种构象允许在ATP水解步骤发生逆转。莫那可林促使观察到的Eg5与微管结合速率显著降低,ADP释放减缓,且不会捕获微管-Eg5·ADP中间体。我们提出,S-莫那可林与Eg5结合会在马达结构域诱导一种稳定的构象变化,这种变化有利于ATP水解后ATP的重新合成。与微管的异常相互作用以及ATP水解步骤的逆转改变了Eg5产生力的能力,从而产生一种无法建立或维持双极纺锤体的无活性微管-Eg5复合物。