Al-Bassam Jawdat, Cui Yujia, Klopfenstein Dieter, Carragher Bridget O, Vale Ronald D, Milligan Ronald A
Department of Cell Biology, The Scripps Research Institute, La Jolla, CA 92037, USA.
J Cell Biol. 2003 Nov 24;163(4):743-53. doi: 10.1083/jcb.200308020.
Caenhorhabditis elegans Unc104 kinesin transports synaptic vesicles at rapid velocities. Unc104 is primarily monomeric in solution, but recent motility studies suggest that it may dimerize when concentrated on membranes. Using cryo-electron microscopy, we observe two conformations of microtubule-bound Unc104: a monomeric state in which the two neck helices form an intramolecular, parallel coiled coil; and a dimeric state in which the neck helices form an intermolecular coiled coil. The intramolecular folded conformation is abolished by deletion of a flexible hinge separating the neck helices, indicating that it acts as a spacer to accommodate the parallel coiled-coil configuration. The neck hinge deletion mutation does not alter motor velocity in vitro but produces a severe uncoordinated phenotype in transgenic C. elegans, suggesting that the folded conformation plays an important role in motor regulation. We suggest that the Unc104 neck regulates motility by switching from a self-folded, repressed state to a dimerized conformation that can support fast processive movement.
秀丽隐杆线虫的Unc104驱动蛋白能快速运输突触小泡。Unc104在溶液中主要以单体形式存在,但最近的运动性研究表明,当它集中在膜上时可能会二聚化。利用冷冻电子显微镜,我们观察到与微管结合的Unc104有两种构象:一种单体状态,其中两个颈部螺旋形成分子内平行卷曲螺旋;另一种二聚体状态,其中颈部螺旋形成分子间卷曲螺旋。通过删除分隔颈部螺旋的柔性铰链,分子内折叠构象被消除,这表明它作为一个间隔物来适应平行卷曲螺旋结构。颈部铰链缺失突变在体外不改变驱动蛋白的速度,但在转基因秀丽隐杆线虫中产生严重的不协调表型,这表明折叠构象在驱动蛋白调节中起重要作用。我们认为,Unc104颈部通过从自我折叠的抑制状态转变为能够支持快速连续运动的二聚体构象来调节运动性。