Grummt M, Woehlke G, Henningsen U, Fuchs S, Schleicher M, Schliwa M
Adolf-Butenandt-Institut, Zellbiologie, University of Munich, Schillerstrasse 42, 80336 Munich, Germany.
EMBO J. 1998 Oct 1;17(19):5536-42. doi: 10.1093/emboj/17.19.5536.
Conventional kinesin is a molecular motor consisting of an N-terminal catalytic motor domain, an extended stalk and a small globular C-terminus. Whereas the structure and function of the catalytic motor domain has been investigated, little is known about the function of domains outside the globular head. A short coiled-coil region adjacent to the motor domain, termed the neck, is known to be important for dimerization and may be required for kinesin processivity. We now provide evidence that a helix-disrupting hinge region (hinge 1) that separates the neck from the first extended coiled-coil of the stalk plays an essential role in basic motor activity. A fast fungal kinesin from Syncephalastrum racemosum was used for these studies. Deletion, substitution by a coiled-coil and truncation of the hinge 1 region all reduce motor speed and uncouple ATP turnover from gliding velocity. Insertion of hinge 1 regions from two conventional kinesins, Nkin and DmKHC, fully restores motor activity, whereas insertion of putative flexible linkers of other proteins does not, suggesting that hinge 1 regions of conventional kinesins can functionally replace each other. We suggest that this region is essential for kinesin movement in its promotion of chemo-mechanical coupling of the two heads and therefore the functional motor domain should be redefined to include not only the catalytic head but also the adjacent neck and hinge 1 domains.
传统驱动蛋白是一种分子马达,由一个N端催化马达结构域、一个延伸的柄部和一个小的球状C端组成。虽然催化马达结构域的结构和功能已得到研究,但关于球状头部以外结构域的功能却知之甚少。已知马达结构域附近一个称为颈部的短卷曲螺旋区域对二聚化很重要,可能是驱动蛋白持续性所必需的。我们现在提供证据表明,将颈部与柄部的第一个延伸卷曲螺旋分开的螺旋破坏铰链区域(铰链1)在基本的马达活性中起关键作用。这些研究使用了来自总状共头霉的一种快速真菌驱动蛋白。删除、用卷曲螺旋替代以及截断铰链1区域均会降低马达速度,并使ATP周转与滑动速度解偶联。插入来自两种传统驱动蛋白Nkin和DmKHC的铰链1区域可完全恢复马达活性,而插入其他蛋白质的假定柔性接头则不能,这表明传统驱动蛋白的铰链1区域在功能上可以相互替代。我们认为该区域对于驱动蛋白在促进两个头部的化学 - 机械偶联中的运动至关重要,因此功能性马达结构域不仅应重新定义为包括催化头部,还应包括相邻的颈部和铰链1结构域。