Beatson Institute for Cancer Research, Garscube Estate, Switchback Road, Bearsden, Glasgow G61 1BD, Scotland, United Kingdom.
J Biol Chem. 2013 Jun 21;288(25):18588-98. doi: 10.1074/jbc.M113.462648. Epub 2013 May 8.
Kinesins comprise a superfamily of molecular motors that drive a wide variety of cellular physiologies, from cytoplasmic transport to formation of the bipolar spindle in mitosis. These differing roles are reflected in corresponding polymorphisms in key kinesin structural elements. One of these is a unique loop and stem motif found in all kinesins and referred to as loop 5 (L5). This loop is longest in the mitotic kinesin Eg5 and is the target for a number of small molecule inhibitors, including ispinesib, which is being used in clinical trials in patients with cancer. In this study, we have used x-ray crystallography to identify a new structure of an Eg5-ispinesib complex and have combined this with transient state kinetics to identify a plausible sequence of conformational changes that occur in response to ispinesib binding. Our results demonstrate that ispinesib-induced structural changes in L5 from Eg5 lead to subsequent changes in the conformation of the switch II loop and helix and in the neck linker. We conclude that L5 in Eg5 simultaneously regulates the structure of both the ATP binding site and the motor's mechanical elements that generate force.
驱动蛋白构成了分子马达的超家族,它们参与了多种细胞生理学过程,从细胞质运输到有丝分裂中双极纺锤体的形成。这些不同的作用反映在关键驱动蛋白结构元件的相应多态性上。其中之一是所有驱动蛋白中都存在的一个独特的环和茎结构基序,称为环 5(L5)。在有丝分裂驱动蛋白 Eg5 中,这个环最长,是许多小分子抑制剂的靶标,包括伊匹单抗,它正在癌症患者的临床试验中使用。在这项研究中,我们使用 X 射线晶体学鉴定了一个 Eg5-伊匹单抗复合物的新结构,并将其与瞬态状态动力学相结合,以鉴定出与伊匹单抗结合时发生的构象变化的合理顺序。我们的结果表明,伊匹单抗诱导的 Eg5 中 L5 的结构变化导致开关 II 环和螺旋以及颈部接头的构象随后发生变化。我们得出结论,Eg5 中的 L5 同时调节 ATP 结合位点的结构和产生力的马达机械元件的结构。