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Secondary Structure and Compliance of a Predicted Flexible Domain in Kinesin-1 Necessary for Cooperation of Motors

机译:电机合作所必需的Kinesin-1中预测的灵活域的二级结构和顺应性。

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摘要

Although the mechanism by which a kinesin-1 molecule moves individually along a microtubule is quite well-understood, the way that many kinesin-1 motor proteins bound to the same cargo move together along a microtubule is not. We identified a 60-amino-acid-long domain, termed Hinge 1, in kinesin-1 from Drosophila melanogaster that is located between the coiled coils of the neck and stalk domains. Its deletion reduces microtubule gliding speed in multiple-motor assays but not single-motor assays. Hinge 1 thus facilitates the cooperation of motors by preventing them from impeding each other. We addressed the structural basis for this phenomenon. Video-microscopy of single microtubule-bound full-length motors reveals the sporadic occurrence of high-compliance states alternating with longer-lived, low-compliance states. The deletion of Hinge 1 abolishes transitions to the high-compliance state. Based on Fourier transform infrared, circular dichroism, and fluorescence spectroscopy of Hinge 1 peptides, we propose that low-compliance states correspond to an unexpected structured organization of the central Hinge 1 region, whereas high-compliance states correspond to the loss of that structure. We hypothesize that strain accumulated during multiple-kinesin motility populates the high-compliance state by unfolding helical secondary structure in the central Hinge 1 domain flanked by unordered regions, thereby preventing the motors from interfering with each other in multiple-motor situations.
机译:尽管驱动蛋白1分子沿着微管单独移动的机制已经被很好地理解,但是结合到同一货物上的许多驱动蛋白1马达蛋白沿着微管一起移动的方式却不是。我们从果蝇果蝇的kinesin-1中识别了一个60个氨基酸长的域,称为Hinge 1,位于脖子和茎域的卷曲螺旋之间。它的删除降低了多电机测定法中微管滑动的速度,但不能降低单电机测定法。因此,铰链1通过防止它们相互阻碍而促进了电动机的协作。我们讨论了这种现象的结构基础。单个微管束缚的全长电动机的视频显微镜显示,高适应性状态与寿命较长的低适应性状态交替出现。铰链1的删除取消了向高遵守状态的过渡。基于Hinge 1肽的傅立叶变换红外光谱,圆二色性和荧光光谱,我们提出低顺应态对应于中心Hinge 1区域的意外结构化组织,而高顺应态对应于该结构的丧失。我们假设在多驱动蛋白运动过程中累积的应变通过在无序区域两侧的中央Hinge 1域中展开螺旋二级结构来填充高顺应性状态,从而防止了在多电机情况下电机相互干扰。

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